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Dive into the research topics where Lorenzo Arcangeli is active.

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Featured researches published by Lorenzo Arcangeli.


Journal of Engineering for Gas Turbines and Power-transactions of The Asme | 2014

The Influence of Roughness on a High-Pressure Steam Turbine Stage: An Experimental and Numerical Study

Juri Bellucci; Filippo Rubechini; Michele Marconcini; Andrea Arnone; Lorenzo Arcangeli; Nicola Maceli; Vincenzo Dossena

This work deals with the influence of roughness on high-pressure steam turbine stages. It is divided in three parts. In the first one, an experimental campaign on a linear cascade is described, in which blade losses are measured for different values of surface roughness and in a range of Reynolds numbers of practical interest. The second part is devoted to the basic aspects of the numerical approach and consists of a detailed discussion of the roughness models used for computations. The fidelity of such models is then tested against measurements, thus allowing their fine-tuning and proving their reliability. Finally, comprehensive computational fluid dynamics (CFD) analysis is carried out on a high-pressure stage, in order to investigate the influence of roughness on the losses over the entire stage operating envelope. Unsteady effects that may affect the influence of the roughness, such as the upcoming wakes on the rotor blade, are taken into account, and the impact of transition-related aspects on the losses is discussed.


Volume 8: Microturbines, Turbochargers and Small Turbomachines; Steam Turbines | 2016

Numerical aerodynamic damping evaluation of high-pressure steam turbine blades for aeromechanical characterization

Lorenzo Peruzzi; Juri Bellucci; Lorenzo Pinelli; Andrea Arnone; Lorenzo Arcangeli; Lorenzo Cosi; Marco Mazzucco

A validated non-linear uncoupled method for flutter stability analysis was employed to estimate the aerodynamic damping of an HP (High-Pressure) steam turbine blade row.Usually such blade rows are not affected to flutter instability problems, yet an estimation of the aerodynamic damping can be useful for an accurate aeromechanical characterization of these kind of blade rows. The geometry under investigation is a typical steam turbine blade row at design point. Computational aeroelastic analyses are performed on the more relevant modeshape, sampling the nodal diameters, in order to well describe the typical aeroelastic stability curve. The presence of the tip shroud implies a strong mechanical coupling between adjacent blades resulting in complex modeshapes with high frequency, significantly different from those usually analyzed in the flutter analysis.The results in term of aerodynamic damping curves are rather different from the usually sinusoidal shape. This is due to the large variation of the frequency over the analyzed nodal diameters, especially at low nodal diameters range. This results are useful to give a better insight in the aeroelastic response of this type of blades.© 2016 ASME


ASME Turbo Expo 2015: Turbine Technical Conference and Exposition | 2015

Flow Evolution in a One and a Half Axial Steam Turbine Stage Under Different Operating Conditions

B. Paradiso; Alessandro Mora; Vincenzo Dossena; Giacomo Gatti; Andrea Nesti; Lorenzo Arcangeli; Nicola Maceli

In order to investigate in detail the performance of steam turbine stages the Low Speed Test Rig at Politecnico di Milano has been adapted. The setup consists of a one and an half turbine stage with an inlet guide vane. Two kind of experimental approaches are planned in the project: the first, denominated “performance”, has been carried out by the OGTL department of GE OilG this large amount of data will be used to validate the results of the CFD simulation carried out in the design stage. In this paper the preliminary findings of the steady flow-field will be presented as the basis for further analysis.© 2015 ASME


ASME Turbo Expo 2013: Turbine Technical Conference and Exposition | 2013

Using CFD to Enhance the Preliminary Design of High-Pressure Steam Turbines

Juri Bellucci; Federica Sazzini; Filippo Rubechini; Andrea Arnone; Lorenzo Arcangeli; Nicola Maceli

This paper focuses on the use of the CFD for improving a steam turbine preliminary design tool.Three-dimensional RANS analyses were carried out in order to independently investigate the effects of profile, secondary flow and tip clearance losses, on the efficiency of two high-pressure steam turbine stages. The parametric study included geometrical features such as stagger angle, aspect ratio and radius ratio, and was conducted for a wide range of flow coefficients to cover the whole operating envelope. The results are reported in terms of stage performance curves, enthalpy loss coefficients and span-wise distribution of the blade-to-blade exit angles. A detailed discussion of these results is provided in order to highlight the different aerodynamic behavior of the two geometries.Once the analysis was concluded, the tuning of a preliminary steam turbine design tool was carried out, based on a correlative approach. Due to the lack of a large set of experimental data, the information obtained from the post-processing of the CFD computations were applied to update the current correlations, in order to improve the accuracy of the efficiency evaluation for both stages. Finally, the predictions of the tuned preliminary design tool were compared with the results of the CFD computations, in terms of stage efficiency, in a broad range of flow coefficients and in different real machine layouts.Copyright


Volume 6: Oil and Gas Applications; Concentrating Solar Power Plants; Steam Turbines; Wind Energy | 2012

Optimization of a High-Pressure Steam Turbine Stage for a Wide Flow Coefficient Range

Juri Bellucci; Filippo Rubechini; Andrea Arnone; Lorenzo Arcangeli; Nicola Maceli; Vincenzo Dossena

In this paper a multi-objective, aerodynamic optimization of a high-pressure steam turbine stage is presented. The overall optimization strategy relies on a neural-network-based approach, aimed at maximizing the stage’s efficiency, while at the same time increasing the stage loading. The stage under investigation is composed of prismatic blades, usually employed in a repeating stage environment and in a wide range of operating conditions. For this reason, two different optimizations are carried out, at high and low flow coefficients. The optimized geometries are chosen taking into account aerodynamic constraints, such as limitation of the pressure recovery in the uncovered part of the suction side, as well as mechanical constraints, such as root tensile stress and dynamic behavior. As a result, an optimum airfoil is selected and its performance are characterized over the whole range of operating conditions. Parallel to the numerical activity, both optimized and original geometries are tested in a linear cascade, and experimental results are available for comparison purposes in terms of loading distributions and loss coefficients. Comparisons between measurements and calculations are presented and discussed for a number of incidence angles and expansion ratios.Copyright


Journal of Engineering for Gas Turbines and Power-transactions of The Asme | 2016

Numerical and Experimental Investigation of Axial Gap Variation in High-Pressure Steam Turbine Stages

Juri Bellucci; Filippo Rubechini; Andrea Arnone; Lorenzo Arcangeli; Nicola Maceli; B. Paradiso; Giacomo Gatti


Volume 8: Microturbines, Turbochargers and Small Turbomachines; Steam Turbines | 2017

Experimental and Numerical Investigation of the Performance Impact of a Heavily Off-Design Inlet Swirl Angle in a Steam Turbine Stage

B. Paradiso; Giacomo Gatti; Alessandro Mora; Vincenzo Dossena; Lorenzo Arcangeli; Nicola Maceli; Juri Bellucci


Journal of Engineering for Gas Turbines and Power-transactions of The Asme | 2016

An Experimental Study of the Aerodynamic Forcing Function in a 1.5 Steam Turbine Stage

Giacomo Gatti; Paolo Gaetani; B. Paradiso; Vincenzo Dossena; Lorenzo Arcangeli; Nicola Maceli; Juri Bellucci


11<sup>th</sup> European Conference on Turbomachinery Fluid dynamics & Thermodynamics | 2015

Design and Operation of a Low Speed Test Turbine Facility

B. Paradiso; Paolo Gaetani; Alessandro Mora; Vincenzo Dossena; C. Osnaghi; Lorenzo Arcangeli; F. Gerbi; Nicola Maceli; R. Quadrelli


Archive | 2012

Optimization of an HP steam turbine stage for a wide flow coefficient range

Juri Bellucci; Filippo Rubechini; Andrea Arnone; Vincenzo Dossena; Lorenzo Arcangeli; Nicola Maceli

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