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Dive into the research topics where Ricardo Chacartegui Ramírez is active.

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Featured researches published by Ricardo Chacartegui Ramírez.


ASME 2010 International Mechanical Engineering Congress and Exposition | 2010

Predictive Maintenance System for 2 Stroke Diesel Engines

Francisco José Jiménez-Espadafor Aguilar; José Antonio Becerra Villanueva; Miguel Torres García; Elisa Carvajal Trujillo; Ricardo Chacartegui Ramírez

Maintenance cost and unexpected failures can be drastically reduced in low speed diesel engines using vibro-acoustic condition monitoring. This methodology has presented as a reliable method for detection of manufacturing faults, running damages and other abnormalities in engine and its components. Continuous trending keeping deviations of monitored parameter allows also reduction of fuel consumption, optimize exhaust emissions, and increase components life time and increase safety. This paper describes a methodology for vibration monitoring and fault diagnosis based on time-windowing and frequency analysis. The effectiveness is demonstrated based on the results of two year operation on a large two stroke power plant diesel engine located in Mahon, Spain.Copyright


ASME 2010 International Mechanical Engineering Congress and Exposition | 2010

Analysis of Steam Turbine Instabilities of a 100 MW Combined Cycle Power Plant

José Antonio Becerra Villanueva; Francisco José Jiménez-Espadafor Aguilar; Elisa Carvajal Trujillo; Ricardo Chacartegui Ramírez; Miguel Torres García

An analysis of the vibration field of the steam turbine in a combined cycle power plant has been used to identify the causes of the plant rejection at commissioning. The steam turbine group consists of a high pressure turbine connected through a gear box to a medium and low pressure turbine. The high vibration level in the main steam turbine journal bearings caused the plant can’t reach nominal power 100 MW, and at approximately 43 MW the plant was rejected. Vibration is measured through proximity non-contact sensors (two per bearing at 90°), which give relative displacements between shafts and the bearing housing. Accelerometers are also located in the bearing housing. The analysis carried out included: • Field measurements; • Critical speeds dynamic model (API 684 guidelines); • Comparison with the API 684 stability test. As a result of this study, the authors found that excessive vibration was caused by a rotor instability phenomenon, “steam whirl”, and that it led to plant rejection. The main conclusions from this work are: • The vibration rejection of the combined cycle plant was due to an excess in the maximum permissible vibration value at synchronism speed, which always occurred at 43 MW. • The excessive vibration level was caused by rotor instabilities at the rotor shaft in the high-pressure steam turbine. The main vibratory energy was concentrated in a frequency range 0.38–0.41 × rpm. • The main instability phenomenon was identified as “steam whirl”. • The protocol used as a tool in the stability analysis of the turbine, defined in API 684, shows that the logarithmic decrement at the first modal frequency in the most dangerous situation (minimum gap in bearings) has a value of 0.149, which is higher than the stability threshold defined in the API 684 specification (0.1). In this way, and according to the stability analysis, the steam turbine design would be safe despite the fact that the instability problem appeared.Copyright


Energy & Fuels | 2008

Analysis of the Start of Combustion of a Diesel Fuel in a HCCI Process through an Integral Chemical Kinetic Model and Experimentation

Miguel Torres García; Ricardo Chacartegui Ramírez; Francisco José Jiménez-Espadafor Aguilar; Tomás Manuel Sánchez Lencero


Archive | 2018

INTEGRATED SYSTEM FOR CAPTURING CO2 AND PRODUCING SODIUM BICARBONATE (NAHCO3) FROM TRONA (NA2CO3 - 2H2O - NAHCO3)

Ricardo Chacartegui Ramírez; José Antonio Becerra Villanueva; José Manuel Valverde Millán; Davide Bonaventura


Archive | 2014

combined cycle turbine humid air and organic Rankine cycle for integrated power generation

Ricardo Chacartegui Ramírez; José Antonio Becerra Villanueva; María José Blanco Martín


Archive | 2011

Perfomance analysis of hybrid systems based on externally heayed closed-cycle engines

David Tomás Sánchez Martínez; J. Muñoz de Escalona; Ricardo Chacartegui Ramírez; Tomás Manuel Sánchez Lencero


Archive | 2011

Molten carbonate fuel cells to improve the perfomance of CHP in wastewater treatment facilities

David Tomás Sánchez Martínez; Benjamín Monje Brenes; Ricardo Chacartegui Ramírez; S. Campanari; Tomás Manuel Sánchez Lencero


Sevilla Técnica | 2010

La cogeneración en el sector residencial

Ricardo Chacartegui Ramírez; David Tomás Sánchez Martínez; Francisco José Jiménez-Espadafor Aguilar


Archive | 2004

Análisis de la dinámica de un grupo motobomba diesel: Implicaciones en las causas de rotura

José Antonio Becerra Villanueva; Elisa Carvajal Trujillo; Ricardo Chacartegui Ramírez; Antonio Muñoz Blanco; Francisco José Jiménez-Espadafor Aguilar


Archive | 2004

Modelo de sobrealimentación para motores de combustión interna alternativos

Rafael Gómez Marassi; Ricardo Chacartegui Ramírez; Antonio Muñoz Blanco; Francisco José Jiménez-Espadafor Aguilar; Tomás Manuel Sánchez Lencero

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