Review and meta-analysis of 82 studies on end-of-life management methods for source separated organics.

This article reports on a literature review and meta-analysis of 82 studies, mostly life cycle assessments (LCAs), which quantified end-of-life (EOL) management options for organic waste. These studies were reviewed to determine the environmental preferability, or lack thereof, for a number of EOL management methods such as aerobic composting (AC), anaerobic digestion (AD), gasification, combustion, incineration with energy recovery (often denoted as waste-to-energy incineration), mechanical biological treatment, incineration without energy recovery (sometimes referenced by just the word "incineration"), and landfill disposal with and without energy recovery from generated methane. Given the vast differences in boundaries as well as uncertainty and variability in results, the LCAs among the 82 studies provided enough data and results to make conclusions regarding just four EOL management methods - aerobic composting, anaerobic digestion, mass burn waste-to-energy (WTE), and landfill gas-to-energy (LFGTE). For these four, the LCAs proved sufficient to determine that aerobic composting and anaerobic digestion are both environmentally preferable to either WTE or LFGTE in terms of climate change impacts. For climate change, LCA results were mixed for WTE versus LFGTE. Furthermore, there is a lack of empirically reliable estimates of the amount of organics input to AD that is converted to energy output versus remaining in the digestate. This digestate can be processed through aerobic composting into a compost product similar to the compost output from aerobic composting, assuming that the same type of organic materials are managed under AD as are managed via AC. The magnitude of any trade-off between generation of energy and production of compost in an AD system appears to be critical for ranking AC and AD for differing types of organics diversion streams. These results emphasize how little we generally know, and exemplify the fact that in the reviewed literature no single EOL management method consistently topped all other management options across all environmental impacts, and that future studies must strive to match existing analytical boundaries and alternatives assessed to increase knowledge if as a community we expect to be able to make even more generalized conclusions.

[1]  Morton A Barlaz,et al.  Estimation of waste component-specific landfill decay rates using laboratory-scale decomposition data. , 2010, Environmental science & technology.

[2]  Giovanni De Feo,et al.  The use of LCA in selecting the best MSW management system. , 2009, Waste management.

[3]  Stephen R Smith,et al.  Small-scale home composting of biodegradable household waste: overview of key results from a 3-year research programme in West London , 2009, Waste management & research : the journal of the International Solid Wastes and Public Cleansing Association, ISWA.

[4]  X. Gabarrell,et al.  The use of life cycle assessment for the comparison of biowaste composting at home and full scale. , 2010, Waste management.

[5]  Jeffrey Morris,et al.  Recycling versus incineration: an energy conservation analysis , 1996 .

[6]  Rodrigo Diaz,et al.  Modelling greenhouse gas emissions for municipal solid waste management strategies in Ottawa, Ontario, Canada , 2008 .

[7]  Robert K. Ham,et al.  A Laboratory Method to Investigate Gaseous Emissions And Solids Decomposition During Composting Of Municipal Solid Wastes , 2000 .

[8]  Stefanie Hellweg,et al.  Modeling Waste Incineration for Life-Cycle Inventory Analysis in Switzerland , 2001 .

[9]  Jeffrey F. Morris,et al.  Bury or burn North America MSW? LCAs provide answers for climate impacts & carbon neutral power potential. , 2010, Environmental science & technology.

[10]  Lucia Rigamonti,et al.  Life cycle assessment of sub-units composing a MSW management system , 2010 .

[11]  Carsten Cuhls,et al.  Green house gas emissions from composting and mechanical biological treatment , 2008, Waste management & research : the journal of the International Solid Wastes and Public Cleansing Association, ISWA.

[12]  Adriana Artola,et al.  A methodology to determine gaseous emissions in a composting plant. , 2009, Waste management.

[13]  Sally Brown,et al.  Quantifying benefits associated with land application of organic residuals in Washington State. , 2011, Environmental science & technology.

[14]  D. Komilis A kinetic analysis of solid waste composting at optimal conditions. , 2006, Waste management.

[15]  X. Lou,et al.  The impact of landfilling and composting on greenhouse gas emissions--a review. , 2009, Bioresource technology.

[16]  Robert K. Ham,et al.  Life-cycle inventory of municipal solid waste and yard waste windrow composting in the United States. , 2004 .

[17]  A. Muntoni,et al.  Landfill gas generation after mechanical biological treatment of municipal solid waste. Estimation of gas generation rate constants. , 2009, Waste management.

[18]  Trine Lund Hansen,et al.  Life cycle modelling of environmental impacts of application of processed organic municipal solid waste on agricultural land (Easewaste) , 2006, Waste management & research : the journal of the International Solid Wastes and Public Cleansing Association, ISWA.

[19]  Thomas Højlund Christensen,et al.  Environmental inventory modelling of the use of compost and peat in growth media preparation. , 2010 .

[20]  S. Barrington,et al.  Home and community composting for on-site treatment of urban organic waste: perspective for Europe and Canada , 2010, Waste management & research : the journal of the International Solid Wastes and Public Cleansing Association, ISWA.

[21]  Charlotte Scheutz,et al.  Mass balances and life-cycle inventory for a garden waste windrow composting plant (Aarhus, Denmark) , 2010, Waste management & research : the journal of the International Solid Wastes and Public Cleansing Association, ISWA.

[22]  X. Font,et al.  Environmental impact of two aerobic composting technologies using life cycle assessment , 2009 .

[23]  Sven Lundie,et al.  LIFE CYCLE ASSESSMENT OF FOOD WASTE MANAGEMENT OPTIONS , 2005 .

[24]  D. Zuberer,et al.  Compost impacts on dissolved organic carbon and available nitrogen and phosphorus in turfgrass soil. , 2008, Waste management.

[25]  Robert K Ham,et al.  Carbon dioxide and ammonia emissions during composting of mixed paper, yard waste and food waste. , 2006, Waste management.

[26]  N J Themelis,et al.  Assessment of the state of food waste treatment in the United States and Canada. , 2010, Waste management.

[27]  Göran Finnveden,et al.  Life cycle assessment of energy from solid waste—part 2: landfilling compared to other treatment methods , 2005 .

[28]  Nickolas J Themelis,et al.  LCA comparison of windrow composting of yard wastes with use as alternative daily cover (ADC). , 2010, Waste management.

[29]  P. Meibom,et al.  Long-term affected energy production of waste to energy technologies identified by use of energy system analysis. , 2010, Waste management.

[30]  Tsao-Chou Chen,et al.  Greenhouse gases emissions from waste management practices using Life Cycle Inventory model. , 2008, Journal of hazardous materials.

[31]  Paul Hooper,et al.  Down to Earth: An illustration of life cycle inventory good practice with reference to the production of soil conditioning compost , 2010 .

[32]  M Haight,et al.  Assessing the environmental burdens of anaerobic digestion in comparison to alternative options for managing the biodegradable fraction of municipal solid wastes. , 2005, Water science and technology : a journal of the International Association on Water Pollution Research.

[33]  Joan Rieradevall,et al.  Environmental assessment of home composting , 2010 .

[34]  Charlotte Scheutz,et al.  Substitution of peat, fertiliser and manure by compost in hobby gardening: user surveys and case studies. , 2010, Waste management.

[35]  Joan Rieradevall,et al.  Life cycle assessment of the use of compost from municipal organic waste for fertilization of tomato crops , 2009 .

[36]  T. H. Christensen,et al.  Composting and compost utilization: accounting of greenhouse gases and global warming contributions , 2009, Waste management & research : the journal of the International Solid Wastes and Public Cleansing Association, ISWA.

[37]  Scott Subler,et al.  Greenhouse gas balance for composting operations. , 2008, Journal of environmental quality.

[38]  Davide Tonini,et al.  Contribution of individual waste fractions to the environmental impacts from landfilling of municipal solid waste. , 2010, Waste management.

[39]  Jeffrey F. Morris,et al.  Measuring environmental value for Natural Lawn and Garden Care practices , 2008 .

[40]  Downey Brill,et al.  Life Cycle Management of Municipal Solid Waste , 1999 .

[41]  T. H. Christensen,et al.  Anaerobic digestion and digestate use: accounting of greenhouse gases and global warming contribution , 2009, Waste management & research : the journal of the International Solid Wastes and Public Cleansing Association, ISWA.

[42]  Martin A. Hubbe,et al.  COMPOSTING AS A WAY TO CONVERT CELLULOSIC BIOMASS AND ORGANIC WASTE INTO HIGH-VALUE SOIL AMENDMENTS: A REVIEW , 2010 .

[43]  F Valerio,et al.  Environmental impacts of post-consumer material managements: recycling, biological treatments, incineration. , 2010, Waste management.

[44]  Jes la Cour Jansen,et al.  Effects of pre-treatment technologies on quantity and quality of source-sorted municipal organic waste for biogas recovery. , 2007, Waste management.

[45]  Bernd Bilitewski,et al.  Comparative evaluation of life cycle assessment models for solid waste management. , 2007 .

[46]  S. Gheewala,et al.  Environmental assessment of energy production from municipal solid waste incineration , 2007 .

[47]  Naciones Unidas. Programa para el Medio Ambiente Waste and Climate Change - Global Trends and Strategy Framework , 2010 .

[48]  Trine Lund Hansen,et al.  Assessment of sampling and chemical analysis of source-separated organic household waste. , 2004, Waste management.

[49]  Stefan Schaltegger,et al.  Eco-efficiency , 2007 .

[50]  T Fruergaard,et al.  Optimal utilization of waste-to-energy in an LCA perspective. , 2011, Waste management.

[51]  Joe Pickin,et al.  Representations of environmental concerns in cost–benefit analyses of solid waste recycling , 2008 .

[52]  Dominic Hogg,et al.  The potential role of compost in reducing greenhouse gases , 2008, Waste management & research : the journal of the International Solid Wastes and Public Cleansing Association, ISWA.

[53]  T. H. Christensen,et al.  Life-cycle-assessment of the historical development of air pollution control and energy recovery in waste incineration. , 2010, Waste management.

[54]  Jes la Cour Jansen,et al.  Methane yield in source-sorted organic fraction of municipal solid waste. , 2007, Waste management.

[55]  T H Christensen,et al.  Greenhouse gas emissions from home composting of organic household waste. , 2010, Waste management.

[56]  Martin Kranert,et al.  Energy or compost from green waste? - A CO(2) - based assessment. , 2010, Waste management.

[57]  Sally Brown,et al.  Changes in Soil Properties and Carbon Content Following Compost Application: Results of On-farm Sampling , 2011 .

[58]  Göran Finnveden,et al.  Life cycle assessment of energy from solid waste—part 1: general methodology and results , 2005 .