Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Michela Lanchi is active.

Publication


Featured researches published by Michela Lanchi.


SOLARPACES 2015: International Conference on Concentrating Solar Power and Chemical Energy Systems | 2016

Hydrogen production by the solar-powered hybrid sulfur process: Analysis of the integration of the CSP and chemical plants in selected scenarios

Raffaele Liberatore; Michela Lanchi; Luca Turchetti

The Hybrid Sulfur (HyS) is a water splitting process for hydrogen production powered with high temperature nuclear heat and electric power; among the numerous thermo-chemical and thermo-electro-chemical cycles proposed in the literature, such cycle is considered to have a particularly high potential also if powered by renewable energy. SOL2HY2 (Solar to Hydrogen Hybrid Cycles) is a 3 year research project, co-funded by the Fuel Cells and Hydrogen Joint Undertaking (FCH JU). A significant part of the project activities are devoted to the analysis and optimization of the integration of the solar power plant with the chemical, hydrogen production plant. This work reports a part of the results obtained in such research activity. The analysis presented in this work builds on previous process simulations used to determine the energy requirements of the hydrogen production plant in terms of electric power, medium ( 550°C) temperature heat. For the supply of medium temperature (MT) heat, a parab...


SOLARPACES 2016: International Conference on Concentrating Solar Power and Chemical Energy Systems | 2017

Integration of photovoltaic and concentrated solar thermal technologies for H2 production by the hybrid sulfur cycle

Raffaele Liberatore; Mariarosaria Ferrara; Michela Lanchi; Luca Turchetti

It is widely agreed that hydrogen used as energy carrier and/or storage media may significantly contribute in the reduction of emissions, especially if produced by renewable energy sources. The Hybrid Sulfur (HyS) cycle is considered as one of the most promising processes to produce hydrogen through the water-splitting process. The FP7 project SOL2HY2 (Solar to Hydrogen Hybrid Cycles) investigates innovative material and process solutions for the use of solar heat and power in the HyS process. A significant part of the SOL2HY2 project is devoted to the analysis and optimization of the integration of the solar and chemical (hydrogen production) plants. In this context, this work investigates the possibility to integrate different solar technologies, namely photovoltaic, solar central receiver and solar troughs, to optimize their use in the HyS cycle for a green hydrogen production, both in the open and closed process configurations. The analysis carried out accounts for different combinations of geographical location and plant sizing criteria. The use of a sulfur burner, which can serve both as thermal backup and SO2 source for the open cycle, is also considered.It is widely agreed that hydrogen used as energy carrier and/or storage media may significantly contribute in the reduction of emissions, especially if produced by renewable energy sources. The Hybrid Sulfur (HyS) cycle is considered as one of the most promising processes to produce hydrogen through the water-splitting process. The FP7 project SOL2HY2 (Solar to Hydrogen Hybrid Cycles) investigates innovative material and process solutions for the use of solar heat and power in the HyS process. A significant part of the SOL2HY2 project is devoted to the analysis and optimization of the integration of the solar and chemical (hydrogen production) plants. In this context, this work investigates the possibility to integrate different solar technologies, namely photovoltaic, solar central receiver and solar troughs, to optimize their use in the HyS cycle for a green hydrogen production, both in the open and closed process configurations. The analysis carried out accounts for different combinations of geographic...


International Journal of Hydrogen Energy | 2007

Hydrogen/methanol production by sulfur-iodine thermochemical cycle powered by combined solar/fossil energy

Alberto Giaconia; Roberto Grena; Michela Lanchi; Raffaele Liberatore; Pietro Tarquini


International Journal of Hydrogen Energy | 2009

Decomposition of hydrogen iodide in the S–I thermochemical cycle over Ni catalyst systems

Paolo Favuzza; Claudio Felici; Michela Lanchi; Raffaele Liberatore; C.V. Mazzocchia; A. Spadoni; Pietro Tarquini; A.C. Tito


International Journal of Hydrogen Energy | 2008

Experimental vapour–liquid equilibrium data of HI–H2O–I2 mixtures for hydrogen production by Sulphur–Iodine thermochemical cycle

Raffaele Liberatore; A. Ceroli; Michela Lanchi; A. Spadoni; Pietro Tarquini


International Journal of Hydrogen Energy | 2012

Energy and economic assessment of an industrial plant for the hydrogen production by water-splitting through the sulfur-iodine thermochemical cycle powered by concentrated solar energy

Raffaele Liberatore; Michela Lanchi; Alberto Giaconia; Pietro Tarquini


International Journal of Hydrogen Energy | 2009

S-I thermochemical cycle : A thermodynamic analysis of the HI-H2O-I2 system and design of the HIx decomposition section

Michela Lanchi; A. Ceroli; Raffaele Liberatore; Luigi Marrelli; Marco Maschietti; A. Spadoni; Pietro Tarquini


International Journal of Hydrogen Energy | 2012

Iodine compounds speciation in HI–I2 aqueous solutions by Raman spectroscopy

A. Spadoni; Mauro Falconieri; Michela Lanchi; Raffaele Liberatore; Michele Marrocco; G. Salvatore Sau; Pietro Tarquini


International Journal of Hydrogen Energy | 2012

Hydrogen production by flue gas through sulfur–iodine thermochemical process: Economic and energy evaluation

Raffaele Liberatore; Michela Lanchi; Giampaolo Caputo; Claudio Felici; Alberto Giaconia; Salvatore Sau; Pietro Tarquini


International Journal of Hydrogen Energy | 2010

Cu–Zn–Al based catalysts for low temperature bioethanol steam reforming by solar energy

G.S. Sau; F. Bianco; Michela Lanchi; Raffaele Liberatore; C.V. Mazzocchia; A. Spadoni; C.A. Tito; Pietro Tarquini; G. Diaz; F. Pin

Collaboration


Dive into the Michela Lanchi's collaboration.

Researchain Logo
Decentralizing Knowledge