Integrated Pyrolysis Regenerated Plant (IPRP): An Efficient and Scalable Concept for Gas Turbine Based Energy Conversion From Biomass and Waste

Author:

Fantozzi Francesco1,D’Alessandro Bruno2,Desideri Umberto1

Affiliation:

1. Dipartimento di Ingegneria Industriale, Universita´ degli Studi di Perugia, Via G. Duranti 1A/4, 06125 Perugia, Italy

2. Ingegneria dei Materiali, Universita´ degli Studi di Perugia, Loc. Pentima Bassa 21, 05100 Terni, Italy

Abstract

A massive effort towards sustainability is necessary to prevent global warming and energy sources impoverishment: both biomass and waste to energy conversion may represent key actions to reach this goal. At the present, state of the art available technologies for biomass and waste to energy conversion are similar and include low to mid efficiency grate incineration or fluidized bed combustion with steam power cycles or mid to high efficiency gas turbine based cycles through integrated gasification technology. Nevertheless, these plants are all available from mid-to-high scale range that can be highly intrusive on protected areas and socially unacceptable. This paper proposes an innovative, low cost, high efficiency plant in which the residue is gasified in the absence of oxygen (pyrolysis), in a rotary kiln, by means of a highly regenerative gas turbine based cycle. Pyrolysis is preferred to gasification, because the syngas obtained has a higher low heating value and produces char or tar as a by-product with an interesting energy content to be re-utilized inside the cycle. Different plant configurations are proposed and discussed through principal thermodynamic variables parametric analysis. Results show that very interesting efficiencies are obtainable in the 30–40% range for every plant scale. This fact shows how IPRP technology can provide an interesting alternative to traditional technologies, especially for the small size (below 5MW). Moreover, the IPRP technology provides a unique solution for microscale (below 500 kW) power plants, opening a new and competitive possibility for distributed biomass or waste to energy conversion systems where low environmental and social impact turns into higher interest and positive dissemination effect.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference24 articles.

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2. van den Broek, R., Faaij, A., and van Wijk, A., 1996, “Biomass Combustion for Power Generation,” Biomass Bioenergy, 11, pp. 271–281.

3. Sta`hl, K., and Neergaard, M., 1998, “IGCC Power Plant for Biomass Utilisation, Va¨rnamo, Sweden,” Biomass Bioenergy, 15, pp. 205–211.

4. Elmegaard, B., Henriksen, U., and Qvale, B., 2002, “Thermodynamic Analysis of Supplementary-Fired Gas Turbine Cycles,” Proceedings of the Conference “ECOS 2002”.

5. Elmegaard, B., Qvale, B., Carapelli, G., and De Faveri, P., 2001, “Open-Cycle Indirectly Fired Gas Turbine for Wet Biomass Fuels,” Proceedings of the Conference “ECOS 2001,” July 4–6, Istanbul, Turkey.

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