TY - CONF A1 - Burbank, John Theodore A1 - Scholz, Christian A1 - Woydt, Mathias T1 - Reactive boundary layers in metallic rolling contacts N2 - The running-in phase of mechanical systems is critical from a tribological standpoint, because microcracks, a cause of material failure, can appear during this phase of heightened friction and wear. The ultimate goal of this current work is to transfer the running-in phase into the finishing process through the preconditioning of novel, high toughness steel bearings and compare these to conventionally used steels. This has been achieved both through the generation of tribo-reactive films and cold work hardening of the steel surface substrates. Determination of the presence of reactive tribofilms was achieved via SEM-EDX with Element-Mapping, whereas the effects of cold work hardening on the samples were observed through measurement of localized hardness and residual stresses. Both tribofilm-protected samples and cold work hardened samples were then subjected to long term slip-rolling testing (10,000,000 cycles, approximately 19 days) to determine any changes in friction behaviour or wear performance. T2 - Gordon Research Conf.: Tribology CY - Waterville, ME, USA DA - 2012-07-08 PY - 2012 AN - OPUS4-26189 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Burbank, John Theodore A1 - Scholz, Christian A1 - Woydt, Mathias T1 - Reactive Boundary Layers in Metallic Rolling Contacts T2 - STLE Annual Meeting 2014 CY - Lake Buena Vista, FL, USA DA - 2014-05-21 PY - 2014 AN - OPUS4-30880 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Burbank, John Theodore A1 - Scholz, Christian A1 - Woydt, Mathias T1 - Reaktive Grenzschichten in metallischen Wälzkontakten T2 - 55. Tribologie-Fachtagung CY - Goettingen, Germany DA - 2014-09-22 PY - 2014 AN - OPUS4-31457 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Burbank, John Theodore A1 - Woydt, Mathias T1 - Reaktive Grenzschichten in metallischen Wälzkontakten N2 - Die Ausbildung von tribologisch günstigen Grenzschichten ist eine häufig für die Phase des Einlaufs angenommene Modellvorstellung. Solche tribologisch günstige, durch Reibungsvorgänge im Kontaktbereich induzierte Triboschichten, werden in der Fachliteratur auch als sog. Beilby- und Cervovit-Schichten oder auch als Tribomutationen bezeichnet. Durch eine Vorkonditionierung mittels modifizierter Schmierstoffe oder durch Kaltverfestigung kann der Verschleiß in Wälzkontakten signifikant erniedrigt werden. Bislang ausgeblieben ist eine deutliche Reibungsminderung, aber es wurde keine Reibungserhöhung gemessen. Es waren die Ziele, mithilfe geeigneter Schmierstoffadditive in Verbindung mit dem Prozess des Kaltverfestigens durch das „Dichtwalzen“ (unter Hertz’schen Kontaktpressungen oberhalb von Pmax = 3,0 GPa), ohne Vorschädigung, eine metallurgische Veränderung zu erzielen und gleichzeitig durch einen induzierten Tribofilm geschützte Stahloberfläche zu erhalten, sodass thermochemische Behandlungen durch diese Konzepte einzeln oder kombiniert substituiert werden können. T2 - 55. Tribologie-Fachtagung - Reibung, Schmierung und Verschleiß - Forschung und praktische Anwendungen CY - Göttingen, Germany DA - 22.09.2014 PY - 2014 SN - 978-3-00-046545-1 VL - II SP - 04/1 EP - 04/11 AN - OPUS4-31631 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Burbank, John Theodore A1 - Woydt, Mathias T1 - Friction and wear reductions under slip-rolling: Optimization of pre-conditioning parameters for novel steel metallurgies T2 - 70. STLE Annual Meeting CY - Dallas, Texas, USA DA - 2015-05-17 PY - 2015 AN - OPUS4-33260 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - THES A1 - Burbank, John T1 - Reactive Boundary Layers in Metallic Rolling Contacts N2 - In order to meet the goal of reducing CO2 emissions, automotive industry places significant importance on downsizing components to achieve greater efficiency through lower weight and reduced friction. As friction reductions are associated with energy efficiency and wear protection with resource conservation, ever greater attention has been given to adamantine carbon- based coatings and high-alloyed steels. Such applications are, however, associated with high production costs and energy expenditures, as well as many technical difficulties. Therefore a key issue in meeting the goals of friction reduction, wear protection and development of comprehensive lightweight strategies is whether or not the functional profiles of state-of-the art alloys can be enhanced by affordable solutions. The running-in phase of mechanical systems is inevitable and, from a tribological standpoint, critical for the lifetime of such systems, though receives little attention and is poorly understood. The growth of micro-cracks accelerates premature material failure and wear during this phase of heightened friction. With this in mind, the ultimate goal of this current work is to transfer the running-in phase into the final step of the mechanical finishing process through the targeted pre-conditioning of novel, high toughness steel bearings without thermo-chemical treatments and compare these to conventional, case-hardened steels. Two mechanisms were investigated: a. Cold work hardening and b. Chemical tribofilm formation. Steels that showed a tendency toward work hardening and tribofilm formation in previous testing were chosen for this investigation. Thorough characterization of the chosen Steels was carried out before any pre-conditioning techniques were applied. The widely used 20MnCr5, seen as a reference gear steel, underwent case-hardening and subsequent deep freezing treatments in an attempt to yield discrete sample groups with respect to residual austenite. This allowed for a more thorough investigation into the effects of residual austenite on the properties of this material. The high-performance alternative steels, 36NiCrMoV1-5-7 (hot working steel) and 45SiCrMo6 (spring steel), were heat treated as recommended by their respective manufacturers, and were not case-hardened. The selection of materials with and materials without case-hardening allows for an investigation into whether or not case-hardening is even necessary to deliver acceptable friction behaviour and wear performance. Elemental analyses were conducted by multiple methods to ensure accurate results. Residual Austenite contents of the steels and the depth profiles of residual stresses were determined by X-Ray diffraction (XRD), for 20MnCr5 ranging from approximately 6 – 14 vol.%, and under 2 vol.% for the alternative alloys. Hardness profiles were taken from the testing surfaces into the material core. The carburization of 20MnCr5 led to higher hardness and the greater concentration of carbon in the carburization zone more representative of a hardened SAE E52100, or 100Cr6/102Cr6, than of a non-case-hardened 20MnCr5. Residual stresses from machining and case-hardening were measured directly at the sample surface. The high-performance Steels fulfilled manufacturer expectations in terms of elemental content, with hardness values between 50 – 55 HRC and strongly martensitic microstructure character. With characterization of the chosen materials complete, the materials could then be subjected to pre-conditioning. The first pre-conditioning method involved targeted generation of cold work hardening as induced boundary layers to protect the contact zone against wear. Work hardening was identified both by variations in residual stress profiles, i.e. the introduction of beneficial compressive residual stresses, and hardness increases in the contact zone, providing enhanced wear resistance. Parameters for work hardening were further optimized to reduce damage to the surface substrates of the treated materials. The second pre-conditioning method involved the targeted generation of chemically reactive tribolayers (tribofilms) on twin disk testing rigs. The lubrication strategies were based on: a. CaCO3, which is predominant in engine oils, and b. MoDTC, which is commonly used in engine and gear oils. The films generated in pre-conditioning were analyzed by SEM-EDX with Element-Mapping, Raman spectroscopy, and XPS to elucidate their molecular composition and concentration on the sample surfaces. The combination of these methods of analysis gave a clear indication that 104 cycles were sufficient to generate stable and lasting tribofilms. CaO and CaCO3 were the main components of the tribofilm from the first lubricant package, while MoS2, MoO2 and MoO3 were the main components from the second lubricant package. Finally, slip-rolling endurance testing (T = +120 °C, 107 cycles, approximately 19 days in a factory fill engine oil) was carried out on all materials. It was shown that both pre-conditioning methods could achieve significant reductions in friction and wear during testing at up to and including P0Mean =1.94 GPa (P0Max = 2.91 GPa, FN = 2,000 N). Ultimately, this research showed that: 1. non-case-hardened high-performance steels offer competitive wear performance and better friction behaviour than the case-hardened 20MnCr5. 2. pre-conditioning led to COF reductions to under 7/10 and wear coefficient reductions to an astonishing 1/10 of the original values for the untreated steels under mixed/boundary lubrication. 3. the observed improvements to friction behaviour and wear performance are indicative of a technically simple, cost- and energy-efficient pre-conditioning strategy that may prove N2 - Die Automobilindustrie legt im Hinblick auf das Ziel der CO2-Emissionsreduktionen viel Wert auf die Erhöhung des Wirkungsgrades von mechanischen Komponenten durch Leichtbau. Eine Reduzierung der Reibung wirkt sich direkt auf die Energieeffizienz aus, währenddessen eine Verschleißminderung zu Materialeinsparungen führt. Aus diesen Gründen genießen diamantartige, kohlenstoffbasierte Beschichtungen und hochlegierten Stähle derzeit große Aufmerksamkeit. Deren Herstellung ist allerdings sowohl mit einem hohen Energie- und Kostenaufwand verbunden, als auch technisch sehr anspruchsvoll. Zur Erreichung der Ziele der Reibungsminderung, des Verschleißschutzes und der Entwicklung umfassender Leichtbaustrategien ist es daher von großer Bedeutung, ob sich das Leistungsprofil neuartiger Legierungen durch kostengünstigere Lösungen verbessern lässt. Obwohl der mechanische Einlauf aus tribologischer Sicht entscheidend für die Lebensdauer mechanischer Systeme ist, genießt er wenig Aufmerksamkeit und ist bis heute nur begrenzt verstanden. So kann die Ausbreitung von Mikrorissen während dieser Phase der erhöhten Reibung zum vorzeitigen Materialversagen führen. In diesem Sinne war es das oberste Ziel dieser Forschungsarbeit, den Einlauf in die mechanische Endbearbeitung vorzuverlegen. Neuartige Stähle wurden dabei ohne kostenintensive, thermochemische Behandlungen gezielt vorkonditioniert und ihre so verbesserten Eigenschaften mit denen von gängigen Einsatzstählen verglichen. Zu den untersuchten Vorkonditionierungsmechanismen gehören die Erzeugung von: a. Kaltverfestigungen und b. chemischen Tribofilmen. Stähle, die in Vorversuchen eine Zuneigung zur Kaltverfestigung und Tribofilmentstehung, wurden für diese Forschungsarbeit ausgewählt. Die ausgewählten Stähle urden vor jeglicher Vorkonditionierung einer gründlichen, metallurgischen Charakterisierung unterzogen. Der Referenzgetriebestahl 20MnCr5 wurde einsatzgehärtet und in getrennten Gruppen bei verschiedenen Temperaturen tiefgekühlt, um Proben in verschiedenen Nuancen des Restaustenitgehaltes zu erhalten. Damit ließ sich der Einfluss des Restaustenits auf die Materialeigenschaften genauer untersuchen. Die Hochleistungsstähle, 36NiCrMoV1-5-7 (Warmarbeitsstahl) und 45SiCrMo6 (Federstahl), wurden nach den Vorschriften der jeweiligen Hersteller wärmebehandelt, und wurden nicht einsatzgehärtet. Die Auswahl an Stählen, mit und ohne Einsatzhärtung, lässt eine Untersuchung darüber zu, ob eine Einsatzhärtung überhaupt notwendig ist, um gutes Reibungs- und Verschleißverhalten zu erzielen. Elementanalysen wurden mittels mehrerer Methoden zur Gewährleistung der bestmöglichen Genauigkeit der Ergebnisse durchgeführt. Die Restaustenitgehalte der Stähle und Eigenspannungstiefenprofile wurden an einem Röntgendiffraktometer ermittelt. Die Restaustenitgehalte des 20MnCr5 lagen zwischen 6 – 14 Vol.-% und die Restaustenitgehalte der Alternativstähle lagen unter 2 Vol.-%. Härtetiefenprofile wurden auch ermittelt. Die Aufkohlung des 20MnCr5 führte zu einer Steigerung der Härte und der Kohlenstoffkonzentration im Randbereich, sodass dieser Bereich des Stahls eher einem gehärteten SAE 52100, oder 100Cr6/102Cr6, als einem nicht einsatzgehärtetem 20MnCr5 entsprach. Eigenspannungen, die durch die mechanische Endbearbeitung entstanden, wurden direkt unter der Oberfläche detektiert. Die Hochleistungsstähle erfüllten mit Härtewerten zwischen 50 – 55 HRC und ihrem ausgeprägt martensitischen Charakter die Herstellervorgaben. Nach dem Abschluss der metallurgischen Charakterisierung wurden die Stähle vorkonditioniert. Zur ersten Vorkonditionierungsmethode gehörte die Erzeugung gezielter Kaltverfestigungen an Zweischeibenprüfständen in der Form von induzierten Grenzschichten, die die Randschicht gegen Verschleiß schützen. Die Wirksamkeit dieser Vorkonditionierung wurde anhand der Zunahme der vorteilhaften Druckeigenspannungen und der Steigerung der Oberflächenhärte nachgewiesen. Beide Eigenschaften verleihen den Stählen eine erhöhte Verschleißbeständigkeit. In einem weiteren Schritt wurden die Vorkonditionierungsparameter zur Erzeugung von Kaltverfestigung optimiert, um die evtl. Deformierung der Substratoberflächen abzumildern. In einer alternativen, zweiten Vorkonditionierung wurden zwei verschiedene Schmierstoffkonzepte implementiert, um an den Zweischeibenprüfständen chemisch reaktive Triboschichten (Tribofilme) zu generieren. Die Schmierstoffkonzepte basierten auf: a. CaCO3, was überwiegend in Motorenölen eingesetzt wird und b. MoDTC, was häufig in Motoren- und Getriebeölen eingesetzt wird. Die durch die Vorkonditionierung erzeugten Tribofilme wurden mittels REM-EDX mit Element- Mapping, Raman-Spektroskopie und XPS analysiert, um ihre molekulare Zusammensetzung und Oberflächenkonzentration zu ermitteln. Der Tribofilm aus dem ersten Schmiermittel bestand hauptsächlich aus CaO und CaCO3 und der Tribofilm aus dem zweiten Schmiermittel bestand hauptsächlich aus MoS2, MoO2 und MoO3. Aus diesen Analysen wurde ersichtlich, dass 104 Laufzyklen zur Generierung stabiler und beständiger Tribofilme vollkommen ausreichend sind. Anschließend wurden alle Stähle in Dauerwälzversuchen (T = +120 °C, 107 Zyklen, etwa 19 Tage in einem Erstbefüllungsmotorenöl) in ihrem Reibungs- und Verschleißverhalten untersucht. Es wurde gezeigt, dass durch vorkonditionierte Kaltverfestigungen oder durch vorkonditionierte Tribofilme die Reibung und der Verschleiß in Wälzkontakten bei Dauerwälzen bis P0Mean =1,94 GPa (P0Max = 2,91 GPa, FN = 2.000 N) signifikant erniedrigt werden können. Im Endeffekt wurde in dieser Arbeit gezeigt, dass: 1. nicht einsatzgehärtete Hochleistungsstähle konkurrenzfähig zu dem einsatzgehärteten 20MnCr5 sind. 2. die Vorkonditionierungen zu einer Senkung des Reibungskoeffizienten bis auf 7/10 und zu einer Senkung des Verschleißkoeffizienten bis auf 1/10 der Koeffizienten der nicht vorkonditionierten Stähle unter Misch-/Grenzreibungsbedingungen führten. 3. die Verbesserungen des Reibungs- und Verschleißverhaltens auf eine technisch einfache, energie- und kosteneffiziente Vorkonditionierungsstrategie weisen, die noch bestehende thermochemische Behandlungen ersetzen könnte. T3 - BAM Dissertationsreihe - 143 KW - Work hardening KW - Steel KW - Friction KW - Wear KW - Tribofilm PY - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:b43-354507 SN - 978-3-9817502-5-6 SN - 1613-4249 VL - 143 SP - 1 EP - 133 PB - Bundesanstalt für Materialforschung und -prüfung (BAM) CY - Berlin AN - OPUS4-35450 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Burbank, John A1 - Woydt, Mathias T1 - Optimization of pre-conditioned cold work hardening of steel alloys for friction and wear reductions under slip-rolling contact N2 - The goal of reducing CO2 emissions in the automobile industry has led to the development of increasingly efficient lightweight material solutions that yield enhanced performance. In light of this goal, this current work involves the optimization of the pre-conditioning of novel, high toughness steel bearings without thermo-chemical treatment, with the aim of transferring the running-in phase into the final step of the mechanical finishing process. A case-hardened gear steel and two novel non-case-hardened steels were evaluated. KW - Work hardening KW - Steel KW - Gear KW - Bearing KW - Residual stress KW - Hardness PY - 2016 U6 - https://doi.org/10.1016/j.wear.2016.01.011 SN - 0043-1648 VL - 350-351 SP - 141 EP - 154 PB - Elsevier B.V. CY - Amsterdam, u.a. AN - OPUS4-35665 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Burbank, John Theodore A1 - Woydt, Mathias T1 - Comparison of slip-rolling behaviour between 20MnCr5 gear steel, 36NiCrMoV1-5-7 hot working tool steel and 45SiCrMo6 spring steel N2 - The automotive industry places significant importance on downsizing components to achieve greater efficiency. The goal of reducing CO2 emissions has led to the development of lightweight materials that are also able to enhance performance. In light of these aspirations, the aim of this study is to characterize two novel, high-performance steels, as well as a 'classical' gear steel for comparison with each other and currently applied materials. The gear steel underwent carburization and subsequent deep freezing treatments in an attempt to yield discrete sample groups with respect to residual austenite. The high-performance steels were heat treated as recommended by their respective manufacturers, and were not carburized. Elemental analyses were conducted by multiple methods to ensure accurate results. Residual austenite contents of the steels and the depth profiles of residual stresses were determined by X-ray diffraction (XRD). Hardness profiles were taken from the testing surfaces into the material core. The carburization of 20MnCr5 led to higher hardness and the greater concentration of carbon in the carburization zone more representative of a hardened SAE E52100, or 100Cr6/102Cr6, than of a non-carburized 20MnCr5. Residual austenite contents ranging from approximately 6–14 vol% were generated, though effectively providing only two, rather than the desired four discrete sample groups. Residual stresses from machining and carburization were measured directly at the sample surface, and from carburization alone below the surface. The high-performance steels fulfilled manufacturer expectations in terms of elemental content, hardness between 50 and 55 HRC and strongly martensitic microstructure character. Finally, slip-rolling endurance testing (T=+120 °C, 10,000,000 cycles, approximately 19 days in a factory fill engine oil) was carried out on all materials, whereby coefficient of friction distributions during testing and wear coefficients after testing were calculated. Testing was performed up to and including P0Mean=1.94 GPa (P0Max=2.91 GPa, FN=2000 N). Ultimately, the non-carburized high-performance steels showed competitive wear performance and better friction behaviour than the carburized 20MnCr5, which has been attributed to their work hardening capability. KW - Gear KW - Bearing KW - Slip-rolling KW - Friction KW - Residual austenite KW - Wear resistance PY - 2015 U6 - https://doi.org/10.1016/j.wear.2015.01.024 SN - 0043-1648 VL - 328-329 SP - 28 EP - 38 PB - Elsevier B.V. CY - Amsterdam AN - OPUS4-32578 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Burbank, John Theodore A1 - Woydt, Mathias T1 - Friction and wear reductions under slip-rolling contact through chemically reactive tribofilm generation during pre-conditioning of steel alloys N2 - The running-in phase of mechanical systems is critical from a tribological standpoint, though poorly understood. Microcracks accelerate material failure and wear during this phase of heightened friction. With this in mind, the ultimate goal of this current work is to transfer the running-in phase into the final step of the mechanical finishing process through the targeted pre-conditioning of novel, high toughness steel bearings without thermo-chemical treatments and compare these to conventional, case-hardened steels. This pre-conditioning involved the targeted implementation of two specific lubricant packages, the first with CaCO3 as the active ingredient and the second with MoDTC as the active ingredient, to generate chemically reactive tribolayers (tribofilms) on twin disk testing rigs. Pre-conditioning was carried out up to 104 load cycles (approximately 25 min). The films generated in pre-conditioning were analyzed by SEM-EDX with Element-Mapping, Raman spectroscopy, and XPS to elucidate their molecular composition and concentration on the sample surfaces. The combination of these methods of analysis gave a clear indication that 104 cycles were sufficient to generate stable chemical tribofilms. CaO and CaCO3 were the main components of the tribofilm from the first lubricant package, while MoS2, MoO2 and MoO3 were the main components from the second lubricant package. Tribofilm-protected samples were then subjected to slip-rolling endurance testing (T=+120 °C, 10,000,000 cycles, approximately 19 days in a factory fill engine oil) to determine any changes in friction behavior or wear performance. Some significant reductions in coefficients of friction at the end of endurance testing were observed, though in certain cases, no definitive improvement was observed. In contrast, very strong reductions in wear were observed across the entire spectrum of materials and testing loads. In some cases, sample surface wear reduction from pre-conditioning via tribofilms reached over 90%. The observed improvements to friction behavior and wear performance are indicative of a technically simple, cost- and energy-efficient pre-conditioning method that may prove to be competitive with existing thermochemical treatments for steel alloys. KW - Tribofilm KW - Running-in KW - MoDTC KW - Slip-rolling KW - Friction KW - Wear PY - 2015 U6 - https://doi.org/10.1016/j.wear.2015.06.006 SN - 0043-1648 VL - 338-339 SP - 133 EP - 143 PB - Elsevier B.V. CY - Amsterdam AN - OPUS4-33556 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Burbank, John A1 - Woydt, Mathias T1 - Friction and wear reductions in slip-rolling steel contacts through pre-conditioned chemical tribofilms from bismuth compounds N2 - Downsizing in mechanical systems requires effective lubrication strategies to ensure that increased contact stresses do not cause critical material failure during operation. Additionally, eco-toxicological consideration are becoming increasingly important. In this regard, the goal of this investigation is to transfer the running-in phase into the final step of the mechanical finishing process through the targeted pre-conditioning of novel, high toughness steel bearings without thermo-chemical treatments and compare these to conventional, case-hardened Steels. Pre-conditioning involved implementation of the ecologically sustainable, bismuth-based additives to generate chemically reactive tribofilms on slip-rolling contacts by using a formulation with a high concentration of tribofilm forming additive. Generated tribofilms were analyzed by Raman spectroscopy to elucidate their molecular composition and, ultimately, determine the reaction mechanisms of bismuth-based tribofilm formation. Tribofilm-protected samples were subjected to slip-rolling endurance testing in a factory fill engine oil without pre-conditioning additives to determine the influence of pre-condition tribofilms on friction behavior and wear performance. It was observed that pre-conditioned tribofilms from the bismuth-based additives were able to yield lower coefficients of friction (COF) and profilometric wear coefficients than for Steels without pre-conditioning. Moreover, COF values under mixed/boundary conditions approaching and even less than 0.04 were achieved, thereby rivaling DLC-coated alloy equivalents. KW - tribofilm KW - bismuth KW - carbamate KW - slip-rolling KW - friction KW - wear PY - 2016 U6 - https://doi.org/doi:10.1016/j.wear.2016.04.004 SN - 0043-1648 VL - 360-361 SP - 29 EP - 37 PB - Elsevier B.V. AN - OPUS4-35919 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Burbank, John A1 - Woydt, Mathias A1 - Spaltmann, Dirk T1 - Reaktive Grenzschichten in metallischen Wälzkontakten N2 - Aus Schmierstoffen gebildete Tribofilme bestimmen das Reibungs- und Verschleißverhalten von Tribosystemen neben der Fresslasttragefähgikeit. Die Kaltverfestigung stellt einen weiteren Mechanismus insbesondere zum Verschleißschutz dar. Unter Wälzreibung wird das funktionale Profil organischer und metallorganischer Tribofilme sowie von Kaltverfestigung verglichen, die auf verschiedenen Stahlmetallurgien innerhalb von 10.000 Überrollungen in einem 2Disk-Prüfstand erzeugt wurden. Dabei wurden Hertzsche Kontaktspannungen ober von P0max=2,14 GPa (FZG14) eingesetzt. T2 - 58. Tribologie-Fachtagung 2017 CY - Göttingen, Germany DA - 25.09.2017 KW - Verschleißschutz KW - Kaltverfestigung KW - Tribofilme PY - 2017 AN - OPUS4-42469 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -