Biohythane: fuel for the future by Debabrata Das, Shantonu Roy

By Debabrata Das, Shantonu Roy

This booklet is a unique test at describing the elemental features of and developments within the box of biohythane construction. the excellent selection of chapters is predicated at the basics of heterotrophic hydrogen construction and consequent methane creation applied sciences. Emphasis is at the integration of 2 levels of a hybrid process for max gaseous power new release from natural wastes, therefore making the final method economically practicable. Readers get perception into the technological developments made within the box of biohydrogen and biomethane creation and the demanding situations occupied with integrating those applied sciences. The booklet additionally contains information of the microbiological, biochemical, and bioprocess points concerning biohythane construction, as well as the applicability of this technique, its socioeconomic matters, and price power research, supplemented with illustrative diagrams, flowcharts, and entire tables. it is going to be an amazing vade mecum for complex undergraduate- and graduate-level scholars of biotechnology, microbiology, biochemical engineering, chemical engineering, and effort engineering; lecturers and researchers in bioenergy, the surroundings, and biofuel construction; and coverage makers.

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Sample text

Hydrothermal gasification of biomass and other organic matter has many advantages over steam reforming. On manipulating the process parameters, methane or hydrogen-rich gas can be produced in this process. Another big advantage is the efficient removal of tar from the system. Tar was solubilized in water under high temperature and pressure as at this condition water behaves as a nonpolar solvent. Hydrothermal gasification can be applied for gasifying a variety of wet biomass such as manure and sewage sludge (biosolids).

For biofuel production has gained importance in recent years. Lignocellulosic crops like these need a systematic pretreatment step to remove the lignin content. After lignin removal, the crystalline cellulose is still not accessible to microbes. Further saccharification of this crystalline cellulose yields simple sugars that could be used for biohydrogen production. Requirement of pretreatment and saccharification processes increases the operational cost of the process. Moreover, many growth 15 16 Introduction inhibitors such as furfurals are produced during the pretreatment and saccharification processes.

References Dickson MH, Fanelli M (eds) (2003). Geothermal Energy: Utilization and Technology, UNESCO renewable energy series, Earthscan, London, p. 205. European Hydrogen and Fuel Cell Technology Platform (2005). Deployment Strategy. org/hfp/keydocs. European research on concentrated solar thermal energy (2004). Directorate-general for research sustainable energy systems, European Union (EU). Gorlov AM (2001). Tidal Energy, Academic Press, Dan Diego, USA, 2955– 2960. Gross R, Leach M, Bauen A (2003).

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