@article{ClaireJuergenJuergen, author = {Claire, Strasser and J{\"u}rgen, Blumm and J{\"u}rgen, Hartmann}, title = {Characterizing Vitrification by Thermal Analysis During Curing of an Epoxy-Amine System}, series = {Journal of Applied Polymer Science}, volume = {142}, journal = {Journal of Applied Polymer Science}, number = {26}, doi = {10.1002/app.57077}, pages = {e57077}, abstract = {During curing, the glass transition temperature of thermosets increases with conversion. When the process is carried out isothermally or at very low heating rates, the glass transition temperature of the resin may rise faster than the material temperature, eventually reaching the latter. This leads to vitrification: The partially cured resin enters the glassy state. The reaction rate drops drastically because it is no longer chemically controlled, but diffusion controlled. As a result, the final product may not be completely cured, which has a severe impact on its mechanical and thermal quality and is therefore crucial for the process. The concept of diffusion-controlled kinetics during the curing reaction has been widely reported and documented. However, the systematic study of the influence of vitrification on specific heat, dielectric properties, and/or thermal diffusivity during crosslinking under isothermal and dynamic conditions has never been performed so far. This work investigates the impact of vitrification on the specific heat, ionic conductivity, and thermal diffusivity during dynamic and isothermal curing of an epoxy-amine system.}, language = {en} } @article{HartmannKnoppShandyetal., author = {Hartmann, J{\"u}rgen and Knopp, Kevin and Shandy, Amir and Winterstein, Achim and Arduini, Mariacarla and Hemberger, Frank and Vidi, Stephan and Manara, Jochen and M{\"u}ller, Michael}, title = {Thermophysikalische Charakterisierung von W{\"a}rmed{\"a}mmschichten}, series = {tm - Technisches Messen}, volume = {88}, journal = {tm - Technisches Messen}, number = {12}, publisher = {Oldenbourg Wissenschaftsverlag}, doi = {10.1515/teme-2021-0074}, abstract = {Die Effizienzsteigerung moderner Gasturbinen erfordert die stetige Anhebung der Betriebstemperatur. Die derzeitigen Brenngastemperaturen liegen mit {\"u}ber 1400 °C signifikant {\"u}ber der kritischen Temperatur der verwendeten Turbinenst{\"a}hle. Zur Gew{\"a}hrleistung der Betriebssicherheit werden die Turbinenschaufeln neben Aktivk{\"u}hlung durch Beschichtung mit thermischen Schutzschichten, sogenannten thermal barrier coatings (TBC), gesch{\"u}tzt. Da es sich bei den TBC um Keramikschichten handelt, ist f{\"u}r die Erh{\"o}hung der Haftfestigkeit das Aufbringen eines Haftvermittlers (Verbindungsschicht) notwendig. Da die Eigenschaften d{\"u}nner Schichten stark von den Eigenschaften des Bulkmaterials abweichen k{\"o}nnen und zudem von der Herstellungsmethode beeinflusst werden, ist eine Untersuchung der thermischen und infrarot-optischen Eigenschaften der tats{\"a}chlichen Schichtstrukturen unumg{\"a}nglich, insbesondere im Hochtemperaturbereich. Hierf{\"u}r wurden Proben des reinen Tr{\"a}gerstahls, des Tr{\"a}gerstahls mit Haftvermittlerschicht und des kompletten Schichtsystems aus Tr{\"a}gerstahl, Haftvermittlerschicht und W{\"a}rmed{\"a}mmschicht verschiedener Dicken hergestellt und mittels Laser-Flash-Methode untersucht. Die Auswertung erfolgte dabei analytisch, ausgehend von der Tr{\"a}gerstahl-Einschichtprobe, {\"u}ber die Zweischicht- und Dreischichtsysteme. Vervollst{\"a}ndigt wurden diese Untersuchungen durch infrarot-optische Charakterisierungen, mit denen sich die W{\"a}rmeausbreitung durch die Schichtsysteme beschreiben l{\"a}sst. Zusammen mit den Laser-Flash Messungen erlaubt dies eine sp{\"a}tere Quantifizierung der einzelnen, bei Keramiken auftretenden, W{\"a}rmetransportmechanismen.}, language = {de} } @inproceedings{HartmannManaraStarketal., author = {Hartmann, J{\"u}rgen and Manara, Jochen and Stark, Thomas and Arduini, Mariacarla and Ebert, Hans-Peter and Knopp, Kevin and Shandy, Amir}, title = {Non-contact detection of the adhesive properties of ceramic coatings for high temperature applications using infrared thermography; Transactions}, publisher = {SMiRT-26}, address = {Berlin/Potsdam}, language = {en} } @inproceedings{HarrerDotterweichHartmannetal., author = {Harrer, S. and Dotterweich, C. and Hartmann, J{\"u}rgen and Zink, M. and Schnitzler, Tim and Ebert, Hans-Peter and Hemberger, Frank}, title = {Paraffine als Phasenwechselmaterialen in der elektrischen Isolierung von Hochspannungsbauteilen}, language = {de} } @inproceedings{HartmannHayFleurenceetal., author = {Hartmann, J{\"u}rgen and Hay, B. and Fleurence, N. and Razouk, R. and Anhalt, Klaus and Sarge, S. and Wu, J. and Milosevic, N. and Cataldi, M. and Lorrette, C. and Knopp, Kevin and Boboridiss, K. and Manara, Jochen and Vidi, Stephan and Pichler, P. and Denner, T.}, title = {Metrological facilities for thermophysical properties measurements at very high temperature}, address = {Darmstadt}, language = {en} } @inproceedings{HartmannManaraStarketal., author = {Hartmann, J{\"u}rgen and Manara, Jochen and Stark, Thomas and Zipf, Matthias and Arduini, Mariacarla and Ebert, Hans-Peter and M{\"u}ller, Michael and M{\"o}ller, F. and Kr{\"u}ger, U. and Schmidt, F. and Knopp, Kevin and Lenski, Philipp and Z{\"a}nglein, Marc and Ochs, Dennis and Shandy, Amir}, title = {Non-contact detection of the adhesion properties of ceramic based thermal barrier coatings by determining the surface temperatures using thermography}, address = {Venedig (Italien)}, language = {en} } @inproceedings{HartmannManaraStarketal., author = {Hartmann, J{\"u}rgen and Manara, Jochen and Stark, Thomas and Zipf, Matthias and Arduini, Mariacarla and M{\"u}ller, Michael and Ebert, Hans-Peter and M{\"o}ller, F. and Kr{\"u}ger, U. and Schmidt, Franz and Knopp, Kevin and Lenski, Philipp and Z{\"a}nglein, Marc}, title = {Einsatz von Thermografieger{\"a}ten zur ber{\"u}hrungslosen Detektion der Haftungseigenschaften an keramischen W{\"a}rmed{\"a}mmschichten}, address = {Berlin}, language = {de} } @inproceedings{HartmannZaengleinKnoppetal., author = {Hartmann, J{\"u}rgen and Z{\"a}nglein, Marc and Knopp, Kevin and Lenski, Philipp and Ochs, Dennis and Arduini, Mariacarla and Hemberger, Frank and Vidi, Stephan and Manara, Jochen}, title = {Experimentierplattform f{\"u}r dynamische Materialuntersuchung}, address = {Berlin}, language = {de} } @inproceedings{HartmannKnoppLenskietal., author = {Hartmann, J{\"u}rgen and Knopp, Kevin and Lenski, Philipp and Ochs, Dennis and Z{\"a}nglein, Marc and Arduini, Mariacarla and Hemberger, Frank and Vidi, Stephan and Manara, Jochen and M{\"u}ller, Michael and M{\"o}ller, F.}, title = {Thermophysikalische Charakterisierung von W{\"a}rmed{\"a}mmschichten}, address = {Berlin}, language = {de} } @inproceedings{HartmannOchsLenskietal., author = {Hartmann, J{\"u}rgen and Ochs, Dennis and Lenski, Philipp and Knopp, Kevin and Z{\"a}nglein, Marc and Manara, Jochen and Arduini, Mariacarla and Hemberger, Frank and Vidi, Stephan}, title = {Untersuchung von Materialeigenschaften additiv gefertigter Proben abh{\"a}ngig von der relativen Dichte}, address = {Berlin}, language = {de} } @inproceedings{HartmannKnoppLenskietal., author = {Hartmann, J{\"u}rgen and Knopp, Kevin and Lenski, Philipp and Z{\"a}nglein, Marc and Manara, Jochen and Stark, Thomas and Zipf, Matthias and Arduini, Mariacarla and Schreiber, Ekkehard and Kr{\"u}ger, U. and Brunner, Martin}, title = {Optische Sensorik f{\"u}r die additive Fertigung}, series = {4SMARTS 2019}, booktitle = {4SMARTS 2019}, isbn = {978-3-8440-6425-4}, pages = {105 -- 116}, language = {de} } @inproceedings{HartmannKnoppLenskietal., author = {Hartmann, J{\"u}rgen and Knopp, Kevin and Lenski, Philipp and Ochs, Dennis and Z{\"a}nglein, Marc and Manara, Jochen and Stark, Thomas and Zipf, Matthias and Arduini, Mariacarla and Schreiber, Ekkehard and Kr{\"u}ger, U. and Schmidt, Franz and Brunner, Martin}, title = {Optische Sensorik f{\"u}r die additive Fertigung}, series = {Sensoren und Messsysteme 2019}, booktitle = {Sensoren und Messsysteme 2019}, address = {N{\"u}rnberg}, language = {de} } @inproceedings{HartmannSeubertZaenglein, author = {Hartmann, J{\"u}rgen and Seubert, R. and Z{\"a}nglein, Marc}, title = {Development of a Calliper to determine thermal conductivity}, isbn = {978-963-429-131-2}, pages = {21 -- 27}, language = {en} } @inproceedings{HartmannZaengleinSeubert, author = {Hartmann, J{\"u}rgen and Z{\"a}nglein, Marc and Seubert, R.}, title = {Development of a Calliper to determine thermal conductivity}, address = {P{\´e}cs (Ungarn)}, language = {en} } @inproceedings{HartmannManaraStarketal., author = {Hartmann, J{\"u}rgen and Manara, Jochen and Stark, Thomas and Zipf, Matthias and Arduini, Mariacarla}, title = {Ein Versuch zur ber{\"u}hrungslosen nicht-invasiven Qualifizierung der Haftung von W{\"a}rmeschutzschichten}, isbn = {978-3-944659-04-6}, pages = {71 -- 76}, language = {de} } @inproceedings{ManaraHartmannRydzeketal., author = {Manara, Jochen and Hartmann, J{\"u}rgen and Rydzek, M. and Stark, Thomas and Arduini-Schuster, Mariacarla and Ebert, Hans-Peter}, title = {Bestimmung des Emissionsgrades und Transmissionsgrades keramischer Materialien bei hohen Temperaturen}, isbn = {3-9810021-8-0}, pages = {219 -- 224}, language = {de} } @article{HartmannManaraZipfetal., author = {Hartmann, J{\"u}rgen and Manara, Jochen and Zipf, Matthias and Stark, Thomas and Arduini, Mariacarla and Ebert, Hans-Peter and Tutschke, Andreas and Hallam, Andrew and Hanspal, Jagdevinder and Langley, Mark and Hodge, D.}, title = {Long wavelength infrared radiation thermometry for non-contact temperature measurements in gas turbines}, series = {Infrared Physics \& Technology}, journal = {Infrared Physics \& Technology}, number = {80}, pages = {120 -- 130}, abstract = {The objective of the EU project "Sensors Towards Advanced Monitoring and Control of Gas Turbine Engines (acronym STARGATE)" is the development of a suite of advanced sensors, instrumentation and related systems in order to contribute to the developing of the next generation of green and efficient gas turbine engines. One work package of the project deals with the design and development of a long wavelength infrared (LWIR) radiation thermometer for the non-contact measurement of the surface temperature of thermal barrier coatings (TBCs) during the operation of gas turbine engines. For opaque surfaces (e.g. metals or superalloys) radiation thermometers which are sensitive in the near or short wavelength infrared are used as state-of-the-art method for non-contact temperature measurements. But this is not suitable for oxide ceramic based TBCs (e.g. partially yttria stabilized zirconia) as oxide ceramics …}, language = {en} } @article{HartmannManaraStarketal., author = {Hartmann, J{\"u}rgen and Manara, Jochen and Stark, Thomas and Zipf, Matthias and Arduini, Mariacarla and Ebert, Hans-Peter and Tutschke, Andreas and Hallam, Andrew and Hanspal, Jagdevinder and Langley, Mark}, title = {Entwicklung und Test eines langwelligen Strahlungsthermometers zur ber{\"u}hrungslosen Temperaturmessung in Gasturbinen w{\"a}hrend des Betriebs}, series = {tm - Technisches Messen}, volume = {85}, journal = {tm - Technisches Messen}, number = {1}, publisher = {Oldenbourg Wissenschaftsverlag}, address = {Berlin/Boston}, doi = {https://doi.org/10.1515/teme-2017-0077}, pages = {28 -- 39}, abstract = {The aim of this work was the development of a long wavelength infrared radiation thermometer for the non-contact measurement of surface temperatures in stationary gas turbines during operation within the EU-project „Sensors Towards Advanced Monitoring and Control of Gas Turbine Engines (acronym STARGATE)". In this work, the infrared-optical properties of the thermal barrier coatings and the combustion gases were determined at ZAE Bayern at high temperatures up to 1600 K and pressures up to 13 bar. Based on these experimental characterizations, a suitable spectral range could be identified which lies around 10 μm for the long-wavelength infrared radiation thermometer. According to these findings, a laboratory setup with suitable optical components (filters, IR-fibers, etc.) was firstly realized and verified. Subsequently, a prototype for measurements in gas turbines during operation of the turbines has …}, language = {de} } @inproceedings{HartmannManaraArduini, author = {Hartmann, J{\"u}rgen and Manara, Jochen and Arduini, Mariacarla}, title = {A Novel Approach for Non-Destructive Testing of the Adhesion of Thermal Barrier Coatings}, publisher = {The Future of Gas Turbine Technology ; 8 th International Gas Turbine Conference}, address = {Br{\"u}ssel (Belgien)}, pages = {12 -- 13}, abstract = {The operation temperatures of gas turbine engines have been increased significantly to optimize their efficiency factor. To protect the metallic blades from these high temperatures, thermal barrier coatings (TBCs) are applied onto the turbine blades. These layers must have a good adhesion to the supporting turbine blade. A poor adhesion may lead to a delamination of the layer during operation and finally to a destruction of the turbine blade and eventually the complete turbine. It is therefore necessary, to check the quality of the layer adhesion regularly during service or preferably during operation. Approaches for non-contact and nondestructive techniques by using optical or infrared radiation are not sophisticated up to now. Hence in this paper a new attempt to improve these optical or infrared-optical methods is described. The presented idea relies on the application of different wavelengths for the used measurement system. Using a short wavelength range, where the TBC is semitransparent, allows the measurement of the temperature of the turbine blade. Using a second, long wavelength range where the TBC is non-transparent, the temperature of the surface of the TBC can be determined. As the thermal contact is usually correlated with the mechanical adhesion such measurements can be a possible tool for nondestructively testing the adhesion of TBCs.}, language = {en} } @inproceedings{HartmannManaraMehling, author = {Hartmann, J{\"u}rgen and Manara, Jochen and Mehling, H.}, title = {The role of the index of refraction in the generation and propagation of blackbody radiation}, address = {Funchal (Portugal)}, language = {en} } @inproceedings{HartmannManaraEbertetal., author = {Hartmann, J{\"u}rgen and Manara, Jochen and Ebert, Hans-Peter and Lenhart-Rydzek, M. and Tutschke, Andreas and Hallam, Andrew}, title = {LWIR pyrometry for the measurement of thermal barrier coatings within the EU project STARGATE}, language = {en} } @inproceedings{HartmannLenhartRydzekStarketal., author = {Hartmann, J{\"u}rgen and Lenhart-Rydzek, M. and Stark, Thomas and Arduini-Schuster, Mariacarla and Manara, Jochen}, title = {Enhanced measuring technique to determine the angle dependent surface emittance from 200 °C up to 1600 °C}, address = {Funchal (Portugal)}, language = {en} } @inproceedings{HartmannAnhaltEdler, author = {Hartmann, J{\"u}rgen and Anhalt, Klaus and Edler, F.}, title = {High-temperature fixed-points for improved temperature metrology above 1100 °C}, address = {Graz}, language = {en} } @inproceedings{HartmannKrenekAnhaltetal., author = {Hartmann, J{\"u}rgen and Krenek, S. and Anhalt, Klaus and Lindemann, A. and Hollandt, J{\"o}rg}, title = {Dynamic Emissivity Measurement: First Results}, address = {Graz}, language = {en} } @inproceedings{HartmannAnhaltSargeetal., author = {Hartmann, J{\"u}rgen and Anhalt, Klaus and Sarge, S.M. and Pagel, R. and Schindler, A. and Denner, T.}, title = {Eutectic high-temperature fixed-points for improves traceability in DSC/DTA}, address = {Graz}, language = {en} } @inproceedings{HartmannManaraStarketal., author = {Hartmann, J{\"u}rgen and Manara, Jochen and Stark, Thomas and Zipf, Matthias and Arduini, Mariacarla and Schreiber, Ekkehard and Kr{\"u}ger, U.}, title = {Experimental set-up for dynamic material investigation}, address = {Graz ({\"O}sterreich)}, language = {en} } @inproceedings{HartmannHarrerDotterweichetal., author = {Hartmann, J{\"u}rgen and Harrer, S. and Dotterweich, C. and Zink, Markus H.}, title = {On the conduction process of dielectric liquids based on mineral oil}, address = {Buenos Aires (Argentinien)}, language = {en} } @inproceedings{HartmannZipfManaraetal., author = {Hartmann, J{\"u}rgen and Zipf, Matthias and Manara, Jochen and Stark, Thomas and Arduini, Mariacarla and Ebert, Hans-Peter}, title = {Non-Contact Temperature Measurement Of Combustion Gases at High Temperatures and High Pressures}, address = {Zakopane (Polen)}, language = {en} } @inproceedings{HartmannManaraZipfetal., author = {Hartmann, J{\"u}rgen and Manara, Jochen and Zipf, Matthias and Stark, Thomas and Arduini, Mariacarla and Ebert, Hans-Peter and Tutschke, Andreas and Hallam, Andrew and Hanspal, Jagdevinder and Langley, Mark and Hodge, D.}, title = {Development of Long Wavelength Infrared Radiation Thermometry for Measurements in Gas Turbines}, address = {Darmstadt}, language = {en} } @inproceedings{HartmannManaraArduini, author = {Hartmann, J{\"u}rgen and Manara, Jochen and Arduini, Mariacarla}, title = {An Attempt to Non-Destructively Qualify the Adhesion of Thermal Barrier Coatings}, address = {Zakopane (Polen)}, language = {en} } @inproceedings{HartmannManaraZipfetal., author = {Hartmann, J{\"u}rgen and Manara, Jochen and Zipf, Matthias and Stark, Thomas and Arduini, Mariacarla and Ebert, Hans-Peter and Tutschke, Andreas and Hallam, Andrew and Hanspal, Jagdevinder and Langley, Mark}, title = {Construction, Calibration and Application of a LWIR Pyrometer within the EU Project STARGATE}, address = {Zakopane (Polen)}, abstract = {The EU project STARGATE (Sensors Towards Advanced Monitoring and Control of Gas Turbine Engines) has the headline objective to develop a suite of advanced sensors, instrumentation and related systems in order to contribute to the development of the next generation of green and efficient gas turbine engines. To increase the efficiency of gas turbines higher combustion temperatures and higher turbine inlet temperatures are required. This implies that turbine blades and vanes are exposed to higher temperatures. Advanced thermal barrier coatings (TBCs) based on ceramic materials protect the components from overheating and ensure mechanical integrity. Still, materials and coatings need to be stressed to their limits to reach the challenging goals of an efficiency increase. Under these circumstances, it is crucial to have sensing techniques available that are capable of accurately monitoring the temperature of turbine parts in order to prevent damages within the engine. The approach to overcome current limitations of existing techniques is to use long wavelength infrared (LWIR) pyrometry as TBCs are usually semi-transparent in the near or short wavelength infrared. Therefore one work package within the STARGATE project is dedicated to the development of a LWIR radiation thermometer to measure the surface temperature of TBCs contactless during operation of the gas turbine engines. The paper shortly gives an overview of the investigation performed within the STARGATE project. The construction, calibration and application of the LWIR radiation thermometer is described in detail and results obtained on a test facility are presented. The paper closes with an outlook on future plans of implementing the LWIR pyrometer in the quality system of gas turbine operation.}, language = {en} } @inproceedings{HartmannManaraZipfetal., author = {Hartmann, J{\"u}rgen and Manara, Jochen and Zipf, Matthias and Stark, Thomas and Arduini, Mariacarla and Ebert, Hans-Peter and Tutschke, Andreas and Hallam, Andrew and Hanspal, Jagdevinder and Langley, Mark}, title = {Long Wavelength Infrared Radiation Thermometry for Non-Contact Temperature Measurements in Gas Turbines}, address = {London}, language = {en} } @inproceedings{Hartmann, author = {Hartmann, J{\"u}rgen}, title = {New developments in high-temperature measurement techniques}, address = {Osijek (Kroatien)}, language = {en} } @inproceedings{HartmannKnoppLenskietal., author = {Hartmann, J{\"u}rgen and Knopp, Kevin and Lenski, Philipp and Ochs, Dennis and Z{\"a}nglein, Marc and Manara, Jochen and Arduini, Mariacarla and Hemberger, Frank and Vidi, Stephan}, title = {Einsatz optischer Sensoranwendungen f{\"u}r additive Fertigungsverfahren}, address = {Dresden}, language = {de} } @inproceedings{HartmannKnoppLenskietal., author = {Hartmann, J{\"u}rgen and Knopp, Kevin and Lenski, Philipp and Ochs, Dennis and Z{\"a}nglein, Marc and Stark, Thomas and Zipf, Matthias and Arduini, Mariacarla and Hemberger, Frank and Vidi, Stephan and Manara, Jochen and M{\"u}ller, Michael and M{\"o}ller, F.}, title = {Systematische thermophysikalische Charakterisierung von W{\"a}rmed{\"a}mmschichten}, address = {N{\"u}rnberg}, language = {de} } @misc{HartmannKnoppZaengleinetal., author = {Hartmann, J{\"u}rgen and Knopp, Kevin and Z{\"a}nglein, Marc and Manara, Jochen and Stark, Thomas and Zipf, Matthias and Schreiber, Ekkehard and Kr{\"u}ger, U. and Brunner, Martin and M{\"u}ller, Michael}, title = {Messsystem f{\"u}r dynamische Materialuntersuchung bei hohen Temperaturen}, address = {N{\"u}rnberg}, language = {de} } @inproceedings{HartmannManaraStarketal., author = {Hartmann, J{\"u}rgen and Manara, Jochen and Stark, Thomas and Zipf, Matthias and Arduini, Mariacarla and Ebert, Hans-Peter and Tutschke, Andreas and Hallam, Andrew and Hanspal, Jagdevinder and Langley, Mark}, title = {Entwicklung und Test eines langwelligen Strahlungsthermometers zur ber{\"u}hrungslosen Temperaturmessung in Gasturbinen w{\"a}hrend des Betriebs}, address = {Berlin}, isbn = {978-3-944659-04-6}, pages = {43 -- 48}, language = {de} } @inproceedings{HartmannJoumaniHayetal., author = {Hartmann, J{\"u}rgen and Joumani, Y. and Hay, B. and Razouk, R. and Anhalt, Klaus and Sarge, S. and Wu, J. and Milosevic, N. and Cataldi, M. and Lorrette, C. and Boboridis, K. and Manara, Jochen and Vidi, Stephan and Pichler, P. and Denner, T.}, title = {EMPIR Hi-TRACE project - Metrological facilities for measuring thermophysical properties up to 3000 °C}, address = {Chengdu (China)}, language = {en} } @inproceedings{HartmannKnoppLenskietal., author = {Hartmann, J{\"u}rgen and Knopp, Kevin and Lenski, Philipp and Z{\"a}nglein, Marc and Manara, Jochen and Stark, Thomas and Zipf, Matthias and Arduini, Mariacarla and Schreiber, Ekkehard and Kr{\"u}ger, U. and Schmidt, Franz and Brunner, Martin}, title = {Optical Sensor systems for additive manufacturing}, address = {Chengdu (China)}, language = {en} } @inproceedings{HartmannManaraZipfetal., author = {Hartmann, J{\"u}rgen and Manara, Jochen and Zipf, Matthias and Stark, Thomas and Arduini, Mariacarla and Knopp, Kevin and Lenski, Philipp and Ochs, Dennis and Z{\"a}nglein, Marc and Schreiber, Ekkehard and Schmidt, Franz}, title = {Experimental set-up for dynamic material investigation at high-temperatures for power engineering and additive manufacturing}, address = {Freiburg}, language = {en} } @inproceedings{HartmannManaraStarketal., author = {Hartmann, J{\"u}rgen and Manara, Jochen and Stark, Thomas and Zipf, Matthias and Arduini, Mariacarla and Schreiber, Ekkehard and Kr{\"u}ger, U. and Knopp, Kevin and Z{\"a}nglein, Marc}, title = {Hochtemperaturmessung und Materialuntersuchung f{\"u}r Energietechnik und additive Fertigungsverfahren}, address = {Dresden}, language = {de} } @inproceedings{HartmannManaraStarketal., author = {Hartmann, J{\"u}rgen and Manara, Jochen and Stark, Thomas and Arduini, Mariacarla and Ebert, Hans-Peter and Zipf, Matthias}, title = {Non-contact temperature measurement of combustion gases at high temperatures and high pressures}, address = {Graz ({\"O}sterreich)}, language = {en} } @inproceedings{HartmannManaraStarketal., author = {Hartmann, J{\"u}rgen and Manara, Jochen and Stark, Thomas and Zipf, Matthias and Arduini, Mariacarla and Ebert, Hans-Peter}, title = {High temperature test-rig for emissvity and non-contact temperature measurements}, address = {Graz ({\"O}sterreich)}, language = {en} } @inproceedings{HartmannAnhaltSchindleretal., author = {Hartmann, J{\"u}rgen and Anhalt, Klaus and Schindler, A. and Denner, T. and Sarge, S. and Pagel, R.}, title = {Eurtektische Hochtemperatur Fixpunkte f{\"u}r die dynamische Differenzkalorimetrie}, address = {N{\"u}rnberg}, language = {de} } @inproceedings{BlotevogelEgermannGoldlueckeetal., author = {Blotevogel, Thomas and Egermann, Jan and Goldl{\"u}cke, J{\"u}rgen and Leipertz, Alfred and Hartmann, Matthias and Schenk, Martin and Berckm{\"u}ller, Martin}, title = {Untersuchungen zur Gemsichbildung in Wasserstoffmotoren}, editor = {Leipertz, Alfred}, publisher = {Esytec}, address = {Erlangen}, isbn = {3-931901-27-0}, pages = {12}, abstract = {Mittels der planaren laserinduzierten Fluoreszenz (PLIF) k{\"o}nnen im Brennraum eines Transparentmotors Messungen durchgef{\"u}hrt werden, die den Gemischbildungsprozess beim Wasserstoffmotor zweidimensional qualitativ darstellen. Auch quantitative Messungen und damit Aussagen {\"u}ber das Kraftstoff-Luft-Verh{\"a}ltnis im Brennraum sind m{\"o}glich. F{\"u}r diese Messungen wird ein Gasgemisch ans Helium und einer Tracersubstanz verwendet, und der Motor wird geschleppt. Bei Betrieb des Motors in der Teillast sind auch Messungen im gefeuerten Betrieb, d.h. mit Wasserstoff und zugesetzter Tracersubstanz, m{\"o}glich. Durch direkte Messung des Kraftstoff-Luft-Verh{\"a}ltnisses und der Wasserstoffkonzentration am befeuerten Aggregat mit Hilfe der Raman-Spektroskopie konnte nachgewiesen werden, daß mittels PLIF der Einstr{\"o}mvorgang qualitativ und das Kraftstoff-Luft-Verh{\"a}ltnis quantitativ grunds{\"a}tzlich richtig erfaßt werden. Qualitative und quantitative PLIF-Messungen sind prinzipiell nicht nur bei Wasserstoffmotoren, sondern auch bei Gasmotoren mit anderen Brenngasen denkbar. Allerdings sind noch weitere Arbeiten erforderlich, um den Quantifizierungsfehler deutlich abzusenken. Zuk{\"u}nftiges Verbesserungspotential f{\"u}r diese Meßtechnik besteht in verschiedenen Punkten. Dazu geh{\"o}rt die Optimierung und Anpassung der Mischstrecke zur Erzeugung des Gas-Luft-Gemisches mit definiertem Kraftstoff-Luft-Verh{\"a}ltnis an die jeweiligen Meßaufgaben, um den relativen Fehler des Lambda-Wertes noch weiter zu reduzieren. Eine Verringerung der Tracerkonzentration erscheint problemlos m{\"o}glich. Um das Problem der Hintergrundfluoreszenz zu l{\"o}sen, sind verschiedene M{\"o}glichkeiten denkbar, die noch genauer zu untersuchen sind.}, language = {de} } @article{HartmannMachinBloembergenetal., author = {Hartmann, J{\"u}rgen and Machin, Graham and Bloembergen, P. and Anhalt, Klaus and Sadli, M. and Saunders, P. and Woolliams, E. and Yamada, Y. and Yoon, H.}, title = {Practical implementation of the mise-en-pratique for the definition of the Kelvin above the silver point}, series = {International Journal of Thermophysics}, journal = {International Journal of Thermophysics}, number = {31}, pages = {1779 -- 1788}, language = {en} } @article{HoefflinSauerSchiffleretal., author = {H{\"o}fflin, Dennis and Sauer, Christian and Schiffler, Andreas and Hartmann, J{\"u}rgen}, title = {Process Monitoring Using Synchronized Path Infrared Thermography in PBF-LB/M}, series = {Sensors}, volume = {22}, journal = {Sensors}, number = {16}, publisher = {MDPI}, doi = {10.3390/s22165943}, pages = {5943}, abstract = {Additive manufacturing processes, particularly Laser-Based Powder Bed Fusion of Metals (PBF-LB/M), enable the development of new application possibilities due to their manufacturing-specific freedom of design. These new fields of application require a high degree of component quality, especially in safety-relevant areas. This is currently ensured primarily via a considerable amount of downstream quality control. Suitable process monitoring systems promise to reduce this effort drastically. This paper introduces a novel monitoring method in order to gain process-specific thermal information during the manufacturing process. The Synchronized Path Infrared Thermography (SPIT) method is based on two synchronized galvanometer scanners allowing high-speed and high-resolution observations of the melt pool in the SWIR range. One scanner is used to steer the laser over the building platform, while the second scanner guides the field of view of an IR camera. With this setup, the melting process is observed at different laser powers, scan speeds and at different locations with respect to the laser position, in order to demonstrate the positioning accuracy of the system and to initially gain thermal process data of the melt pool and the heat-affected zone. Therefore, the SPIT system shows a speed independent overall accuracy of ±2 Pixel within the evaluated range. The system further allows detailed thermal observation of the melt pool and the surrounding heat-affected zone.}, language = {en} } @incollection{HartmannBernhard, author = {Hartmann, J{\"u}rgen and Bernhard, Frank}, title = {Strahlungsthermometrie}, series = {Technische Temperaturmessung}, booktitle = {Technische Temperaturmessung}, editor = {Bernhard, Frank}, edition = {2}, publisher = {Springer}, isbn = {ISBN 978-3-642-24505-3}, language = {de} } @inproceedings{HartmannManaraZipfetal., author = {Hartmann, J{\"u}rgen and Manara, Jochen and Zipf, Matthias and Stark, Thomas and Arduini, Mariacarla and Ebert, Hans-Peter and Tutschke, Andreas and Hallam, Andrew and Hanspal, Jagdevinder and Langley, Mark and Hodge, D.}, title = {Development of Long Wavelength Infrared Radiation Thermometry for Measurements in Gas Turbines}, address = {Darmstadt}, language = {en} } @inproceedings{HartmannKnoppLenskietal., author = {Hartmann, J{\"u}rgen and Knopp, Kevin and Lenski, Philipp and Z{\"a}nglein, Marc and Manara, Jochen and Stark, Thomas and Zipf, Matthias and Arduini, Mariacarla and Schreiber, Ekkehard and Kr{\"u}ger, U. and Schmidt, Franz and Brunner, Martin}, title = {Sensor systems for additive manufacturing}, publisher = {Key Note Lecture MSE 2018}, address = {Darmstadt}, language = {en} } @inproceedings{ZinkDotterweichHartmannetal., author = {Zink, Markus H. and Dotterweich, C. and Hartmann, J{\"u}rgen and Harrer, S. and Hemberger, F. and Ebert, Hans-Peter and Schnitzler, Tim}, title = {Phase Change Materials for Use in Thermally and Electrically Stressed Insulation for High Voltage Applications}, series = {IEEE Electrical Insulation Conference}, volume = {2016}, booktitle = {IEEE Electrical Insulation Conference}, pages = {605 -- 608}, language = {en} } @inproceedings{HartmannOchsLenskietal., author = {Hartmann, J{\"u}rgen and Ochs, Dennis and Lenski, Philipp and Schiffler, Andreas and Versch, Alexander and Manara, Jochen}, title = {Thermal process monitoring for additive manufacturing}, address = {Darmstadt}, language = {en} }