Dissertations / Theses on the topic 'Variable geometry turbocharger'
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Sutton, Anthony James. "Experimental evaluation of compressor variable geometry in a turbocharger compressor." Thesis, University of Bath, 1986. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.289813.
Full textWöhr, Michael, Elias Chebli, Markus Müller, Hans Zellbeck, Johannes Leweux, and Andreas Gorbach. "Development of a turbocharger compressor with variable geometry for heavy-duty engines." Sage, 2015. https://tud.qucosa.de/id/qucosa%3A35552.
Full textWöhr, Michael, Elias Chebli, Markus Müller, Hans Zellbeck, Johannes Leweux, and Andreas Gorbach. "Development of a turbocharger compressor with variable geometry for heavy-duty engines." Sage, 2014. https://publish.fid-move.qucosa.de/id/qucosa%3A38444.
Full textRajoo, Srithar. "Steady and pulsating performance of a variable geometry mixed flow turbocharger turbine." Thesis, Imperial College London, 2006. http://hdl.handle.net/10044/1/39159.
Full textMehmood, Adeel. "Modeling, simulation and robust control of an electro-pneumatic actuator for a variable geometry turbocharger." Phd thesis, Université de Technologie de Belfort-Montbeliard, 2012. http://tel.archives-ouvertes.fr/tel-00827445.
Full textGustafsson, Jonatan. "Linearization Based Model Predictive Control of a Diesel Engine with Exhaust Gas Recirculation and Variable-Geometry Turbocharger." Thesis, Linköpings universitet, Fordonssystem, 2021. http://urn.kb.se/resolve?urn=urn:nbn:se:liu:diva-174829.
Full textO'Neill, J. W. "An experimental and numerical investigation of the flow field in the turbine stator of a variable geometry turbocharger." Thesis, Queen's University Belfast, 2004. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.403436.
Full textAcheson, S. K. "An experimental investigation of the flow field in the turbine stator of a variable geometry turbocharger using laser Doppler velocimetry." Thesis, Queen's University Belfast, 2004. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.403440.
Full textVertaľ, Peter. "Provoz a údržba vozidel s přeplňovanými motory turbodmychadly." Master's thesis, Vysoké učení technické v Brně. Ústav soudního inženýrství, 2010. http://www.nusl.cz/ntk/nusl-232496.
Full textNovotný, Pavel. "Zážehový motor s Millerovým cyklem optimalizace provozu turbodmychadla." Master's thesis, Vysoké učení technické v Brně. Fakulta strojního inženýrství, 2021. http://www.nusl.cz/ntk/nusl-449786.
Full textWöhr, Michael. "Entwicklung eines variablen Turbolader-Verdichters für schwere Nutzfahrzeugmotoren." Doctoral thesis, Saechsische Landesbibliothek- Staats- und Universitaetsbibliothek Dresden, 2016. http://nbn-resolving.de/urn:nbn:de:bsz:14-qucosa-215989.
Full textReducing the total costs of ownership, achieving the rated engine power and compliance with exhaust-emission legislation are competing goals regarding the development of heavy duty engines. This leads to demanding requirements for the aerodynamic design of the turbocharger compressor stage such as high efficiencies at various operating points and a broad map width. The aim of the present doctoral thesis is to investigate the potential of a compressor with variable geometry in order to obtain a better compromise between efficiency and compressor map width for the purpose of increasing fuel economy without sacrifices concerning the rated power, engine brake performance or surge stability. In a first step, the evaluation of load cycles yields operating points on which the fuel consumption is heavily dependent. Results of 1D- and 3D fluid flow simulations show that the high tangential velocity in the vaneless diffusor is the main cause for the reduction of compressor efficiency in the main driving range. A parameter study containing 47 different geometries is conducted at a hot gas test rig in order to examine the potential of vaned diffusers regarding the reduction of the tangential velocity component. It can be seen that by introducing diffuser vanes compressor efficiency can be increased by up to 8 percent. The narrow map width however prevents the use of a fixed geometry for heavy duty engines. Based on those results three variable geometry compressors are developed with the goal of maintaining the efficiency benefit of vaned diffusers while increasing the map width by adjustable geometric features. The evaluation of the variable compressor systems is based on hot gas and engine test bench measurements. The variable compressor system with the lowest complexity utilizes a recirculation valve in the compressor housing in combination with a fixed geometry vaned diffuser in order to improve the surge margin for a short period of time at a sudden load drop. The abandonment of functional gaps in the diffuser leads to the highest improvement of fuel economy of 0,6 − 1,4% in the main driving range. The compressor with stacked diffuser vanes has two separate flow channels in the diffuser. During engine operation only one vaned diffuser geometry is active. The axial movement is performed via pressure chambers in the compressor and bearing housing. The two diffuser geometries are either optimized for high or low mass flows. This way the fuel consumption in the main driving range can be reduced by 0,5 − 0,8%. The compressor with pivoting vanes in the diffuser has the highest complexity of all systems. With the aid of an electronic actuator the vane inlet angle and throat area can be adjusted to the impeller outlet flow conditions at each operating point. As a consequence the pivoting vanes compressor achieves the best results regarding engine brake performance and surge stability. The fuel economy in the main driving range can be improved by 0,3 − 0,6%. Higher benefits are prevented by demanding geometric constraints in order to ensure the rotatability of the vanes and to prevent vibrations of the impeller blades
Glenn, Bradley C. "Coordinated control of the turbo electrically assisted variable geometry turbocharged diesel engine with exhaust gas recirculation." Connect to resource, 2005. http://rave.ohiolink.edu/etdc/view?acc%5Fnum=osu1127225590.
Full textTitle from first page of PDF file. Document formatted into pages; contains xv, 178 p.; also includes graphics (some col.). Includes bibliographical references (p. 153-158). Available online via OhioLINK's ETD Center
Backhouse, R. J. "The dynamic behaviour and feedback control of a turbocharged automotive diesel engine with variable geometry turbine." Thesis, University of Manchester, 1986. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.375340.
Full textGlenn, Bradley Charles. "Coordinated control of the turbo electrically assisted variable geometry turbocharged diesel engine with exhaust gas recirculation." The Ohio State University, 2005. http://rave.ohiolink.edu/etdc/view?acc_num=osu1127225590.
Full textŽatko, Miroslav. "Optimization of the Stator Vane Aerodynamic Loading for a Turbocharger with a Variable Nozzle Turbine." Doctoral thesis, Vysoké učení technické v Brně. Fakulta strojního inženýrství, 2015. http://www.nusl.cz/ntk/nusl-234359.
Full textWöhr, Michael. "Entwicklung eines variablen Turbolader-Verdichters für schwere Nutzfahrzeugmotoren." Doctoral thesis, 2015. https://tud.qucosa.de/id/qucosa%3A30063.
Full textReducing the total costs of ownership, achieving the rated engine power and compliance with exhaust-emission legislation are competing goals regarding the development of heavy duty engines. This leads to demanding requirements for the aerodynamic design of the turbocharger compressor stage such as high efficiencies at various operating points and a broad map width. The aim of the present doctoral thesis is to investigate the potential of a compressor with variable geometry in order to obtain a better compromise between efficiency and compressor map width for the purpose of increasing fuel economy without sacrifices concerning the rated power, engine brake performance or surge stability. In a first step, the evaluation of load cycles yields operating points on which the fuel consumption is heavily dependent. Results of 1D- and 3D fluid flow simulations show that the high tangential velocity in the vaneless diffusor is the main cause for the reduction of compressor efficiency in the main driving range. A parameter study containing 47 different geometries is conducted at a hot gas test rig in order to examine the potential of vaned diffusers regarding the reduction of the tangential velocity component. It can be seen that by introducing diffuser vanes compressor efficiency can be increased by up to 8 percent. The narrow map width however prevents the use of a fixed geometry for heavy duty engines. Based on those results three variable geometry compressors are developed with the goal of maintaining the efficiency benefit of vaned diffusers while increasing the map width by adjustable geometric features. The evaluation of the variable compressor systems is based on hot gas and engine test bench measurements. The variable compressor system with the lowest complexity utilizes a recirculation valve in the compressor housing in combination with a fixed geometry vaned diffuser in order to improve the surge margin for a short period of time at a sudden load drop. The abandonment of functional gaps in the diffuser leads to the highest improvement of fuel economy of 0,6 − 1,4% in the main driving range. The compressor with stacked diffuser vanes has two separate flow channels in the diffuser. During engine operation only one vaned diffuser geometry is active. The axial movement is performed via pressure chambers in the compressor and bearing housing. The two diffuser geometries are either optimized for high or low mass flows. This way the fuel consumption in the main driving range can be reduced by 0,5 − 0,8%. The compressor with pivoting vanes in the diffuser has the highest complexity of all systems. With the aid of an electronic actuator the vane inlet angle and throat area can be adjusted to the impeller outlet flow conditions at each operating point. As a consequence the pivoting vanes compressor achieves the best results regarding engine brake performance and surge stability. The fuel economy in the main driving range can be improved by 0,3 − 0,6%. Higher benefits are prevented by demanding geometric constraints in order to ensure the rotatability of the vanes and to prevent vibrations of the impeller blades.:1 Einleitung 1.1 Einführung 1.2 Stand der Technik 1.3 Zielsetzung 2 Grundlagen 2.1 Der schwere Nutzfahrzeugmotor 2.1.1 Aufbau 2.1.2 Kenngrößen 2.1.3 Motorbremse 2.2 Der Turbolader-Radialverdichter 2.2.1 Systembeschreibung 2.2.2 Definition von Kenngrößen 2.2.3 ThermodynamischeBeschreibung 2.3 Thermodynamik des Aufladesystems 2.3.1 Stationäre Lastkurven im Verdichterkennfeld 2.3.2 Grenzwerte im Stationärbetrieb 2.3.3 Transientverhalten 3 Methodik 3.1 Lösungsweg 3.2 Lastkollektivauswertung 3.3 Parametrisiertes Diffusormodell 3.3.1 Geometrischer Aufbau 3.3.2 Auslegungsgrößen 3.3.3 Parameterstudie 3.4 Simulation 3.4.1 1D-Strömungssimulation in Diffusor und Volute 3.4.2 3D-Strömungssimulation der Verdichterstufe 3.4.3 Motorprozesssimulation 3.5 Heißgasprüfstand 3.5.1 Kennfeldvermessung 3.5.2 Aerodynamikmessung 3.5.3 Verkokungsanfälligkeit 3.6 Motorprüfstand 3.6.1 Aufbau 3.6.2 Randbedingungen 3.6.3 Akustikmessung 4 Ergebnisse 4.1 Validierung 4.1.1 Strömungszustand am Verdichterradaustritt 4.1.2 Simulation der Verdichterstufe mit unbeschaufeltem Diffusor 4.1.3 Simulation der Verdichterstufe mit beschaufeltem Diffusor 4.2 Verlustanalyse Basisverdichter 4.2.1 Auswertung der Lastkollektive 4.2.2 Aerodynamische Verlustanalyse 4.2.3 Strömungsmechanik im Diffusor 4.3 Parameterstudie beschaufelter Diffusoren 4.3.1 Einfluss von Nachleitgittern auf das Verdichterkennfeld 4.3.2 Anforderungen des schweren Nutzfahrzeugmotors 4.4 Aerodynamik beschaufelter Diffusoren 4.4.1 Auslegungskriterien 4.5 Verkokung beschaufelter Diffusoren 5 Variable Verdichter 5.1 VRVC - Starres Nachleitgitter mit Schubumluftventil 5.1.1 Auslegung und Konstruktion 5.1.2 Heißgasprüfstand 5.2 VSVC-Doppeldiffusor 5.2.1 Auslegung und Konstruktion 5.2.2 Heißgasprüfstand 5.3 VPVC-RotierbareSchaufeln 5.3.1 Auslegung und Konstruktion 5.3.2 Heißgasprüfstand 5.4 Verhalten variabler Verdichter am schweren NFZ-Motor 5.4.1 Volllast 5.4.2 Lastvariation 5.4.3 DynamischesAnsprechverhalten 5.4.4 Low-End Torque 5.4.5 Dynamische Pumpstabilität 5.4.6 Bremsbetrieb 5.4.7 Ansteuerung 5.4.8 Akustik 5.5 Übersicht 6 Zusammenfassung und Ausblick 7 Anhang Literaturverzeichnis