Anaerobic digestion of whole-crop winter wheat silage for renewable energy production

With biogas production expanding across Europe in response to renewable energy incentives, a wider variety of crops need to be considered as feedstock. Maize, the most commonly used crop at present, is not ideal in cooler, wetter regions, where higher energy yields per hectare might be achieved with...

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Bibliographic Details
Main Authors: Rincon, Barbara (Author), Heaven, Sonia (Author), Banks, Charles J. (Author), Zhang, Yue (Author)
Format: Article
Language:English
Published: 2012-03-19.
Subjects:
Online Access:Get fulltext
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100 1 0 |a Rincon, Barbara  |e author 
700 1 0 |a Heaven, Sonia  |e author 
700 1 0 |a Banks, Charles J.  |e author 
700 1 0 |a Zhang, Yue  |e author 
245 0 0 |a Anaerobic digestion of whole-crop winter wheat silage for renewable energy production 
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856 |z Get fulltext  |u https://eprints.soton.ac.uk/338960/1/__soton.ac.uk_ude_PersonalFiles_Users_sh7_mydocuments_SHnow_Res_Papers_Rincon_Main%2520wheat_Published_Rinc%25C3%25B3n%2520et%2520al%2520Energy%2520%2526%2520Fuels-2012.pdf 
520 |a With biogas production expanding across Europe in response to renewable energy incentives, a wider variety of crops need to be considered as feedstock. Maize, the most commonly used crop at present, is not ideal in cooler, wetter regions, where higher energy yields per hectare might be achieved with other cereals. Winter wheat is a possible candidate because, under these conditions, it has a good biomass yield, can be ensiled, and can be used as a whole crop material. The results showed that, when harvested at the medium milk stage, the specific methane yield was 0.32 m3 CH4 kg-1 volatile solids added, equal to 73% of the measured calorific value. Using crop yield values for the north of England, a net energy yield of 146-155 GJ ha-1 year-1 could be achieved after taking into account both direct and indirect energy consumption in cultivation, processing through anaerobic digestion, and spreading digestate back to the land. The process showed some limitations, however: the relatively low density of the substrate made it difficult to mix the digester, and there was a buildup of soluble chemical oxygen demand, which represented a loss in methane potential and may also have led to biofoaming. The high nitrogen content of the wheat initially caused problems, but these could be overcome by acclimatization. A combination of these factors is likely to limit the loading that can be applied to the digester when using winter wheat as a substrate 
655 7 |a Article