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Dry Matter Losses and Methane Emissions During Wood Chip Storage: the Impact on Full Life Cycle Greenhouse Gas Savings of Short Rotation Coppice Willow for Heat

Overview
Journal Bioenergy Res
Date 2020 May 2
PMID 32355533
Citations 3
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Abstract

A life cycle assessment (LCA) approach was used to examine the greenhouse gas (GHG) emissions and energy balance of short rotation coppice (SRC) willow for heat production. The modelled supply chain includes cutting multiplication, site establishment, maintenance, harvesting, storage, transport and combustion. The relative impacts of dry matter losses and methane emissions from chip storage were examined from a LCA perspective, comparing the GHG emissions from the SRC supply chain with those of natural gas for heat generation. The results show that SRC generally provides very high GHG emission savings of over 90 %. The LCA model estimates that a 1, 10 and 20 % loss of dry matter during storage causes a 1, 6 and 11 % increase in GHG emissions per MWh. The GHG emission results are extremely sensitive to emissions of methane from the wood chip stack: If 1 % of the carbon within the stack undergoes anaerobic decomposition to methane, then the GHG emissions per MWh are tripled. There are some uncertainties in the LCA results, regarding the true formation of methane in wood chip stacks, non-CO emissions from combustion, NO emissions from leaf fall and the extent of carbon sequestered under the crop, and these all contribute a large proportion of the life cycle GHG emissions from cultivation of the crop.

Citing Articles

Testing the Use of Static Chamber Boxes to Monitor Greenhouse Gas Emissions from Wood Chip Storage Heaps.

Whittaker C, Yates N, Powers S, Donovan N, Misselbrook T, Shield I Bioenergy Res. 2020; 10(2):353-362.

PMID: 32104527 PMC: 7010367. DOI: 10.1007/s12155-016-9800-9.


Breeding progress and preparedness for mass-scale deployment of perennial lignocellulosic biomass crops switchgrass, miscanthus, willow and poplar.

Clifton-Brown J, Harfouche A, Casler M, Jones H, Macalpine W, Murphy-Bokern D Glob Change Biol Bioenergy. 2019; 11(1):118-151.

PMID: 30854028 PMC: 6392185. DOI: 10.1111/gcbb.12566.


Dry Matter Losses and Greenhouse Gas Emissions From Outside Storage of Short Rotation Coppice Willow Chip.

Whittaker C, Yates N, Powers S, Misselbrook T, Shield I Bioenergy Res. 2016; 9:288-302.

PMID: 27398132 PMC: 4913936. DOI: 10.1007/s12155-015-9686-y.

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Whittaker C, Yates N, Powers S, Misselbrook T, Shield I . Dry Matter Losses and Greenhouse Gas Emissions From Outside Storage of Short Rotation Coppice Willow Chip. Bioenergy Res. 2016; 9:288-302. PMC: 4913936. DOI: 10.1007/s12155-015-9686-y. View