Showing posts with label Resources. Show all posts
Showing posts with label Resources. Show all posts

Friday, July 01, 2011

How to Manage Food Waste - Alternatives to Landfill Where it Adds to Leachate Production - Natural Resources Defense Council (blog)

Food waste is approximately 14% of the household waste we discard. Food waste is of concern to environmental agencies and municipalities because in landfills food waste is a primary cause of methane gas emissions, a very potent greenhouse gas, and the methanogens that food waste supports in landfills also cause the mobilization of other pollutants in landfills, resulting in an increase in both air pollutants and leachate.




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In waste combustors, food waste is a cause of nitrogen oxide emissions, which is also a greenhouse gas, as well as a cause of smog and respiratory illness. Moreover, since food waste can contain as much as 70% water, it is not a high Btu fuel, and therefore is not well-suited for combustion. The best disposal option for food waste is neither landfilling nor incineration. Ideally, food waste should be composted. If you have a compost bin where you live, you can incorporate food waste into your home compost – if not, consider setting up a home compost system. Home composting avoids transportation of organic wastes, saving fuel and other resources associated with transporting waste. There are many resources describing the options for home composting, including http://www.stopwaste.org/home/index.asp?page=441 – these range from backyard bins to vermicompost (worm bins), and can be tailored to fit your needs. In some communities (such as San Francisco), food waste is collected in curbside recycling programs, usually along with yard waste. Typically, in a municipal composting system, you can compost a wider variety of wastes (including animal products and food-soiled paper) than you might be able to accommodate in home composting. Check with your local waste management authority to find options for the disposal of food and yard wastes in your community.


If you don’t have access to composting, you can dispose of most food waste in under-sink food waste disposers, also known as garbage disposals. Many municipal wastewater treatment facilities have anaerobic digesters that extract energy in the form of biogas from solids in the waste water, and most can produce soil amendments such as fertilizer from processed solids. Some wastewater treatment systems benefit from the addition of food solids, because that can make the process of converting waste into energy more efficient, but too much or the wrong types of food waste can overwhelm the system. This is one of the reasons it makes sense to use in-sink disposers as a complement to municipal and backyard composting programs. Moreover, in-sink food disposal systems increase the amount of water used at home. Although this increase is only a small amount for any individual home, the added water from tens of thousands of homes switching to in-sink disposal units can be significant. Finally, cooking oils, fats, and greases should never be disposed of down the drain. Even if you use hot water, detergents, or garbage disposals, oils can congeal in pipes and potentially contribute to sewage backups.


To sum up, food scraps should not be sent to landfills or incinerators. Instead, the best option for disposing of food waste is composting, whether at home or in a municipal system. The next best option is typically an in-sink waste disposer – but check to make sure your community isn’t running low on water before using garbage disposals, and make sure only to put allowed wastes down the drain.


View the original article here

Thursday, March 17, 2011

Geochemistry of leachates from selected coal mining and combustion wastes (Contribution / Kansas Water Resources Research Institute)

Sanitary landfills are the most widely utilized method of solid waste disposal around the world. With increased use and public awareness of this method of disposal, there is much concern with respect to the pollution potential of the landfill leachate.


Depending on the composition and extent of decomposition of the refuse and hydrological factors, the leachate may become highly contaminated. As leachate migrates away from a landfill, it may cause serious pollution to the groundwater aquifer as well as adjacent surface waters.




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Above video is not associated with the text. However, we thought you may find it of interest.


There is growing concern about surface and groundwater pollution from leachate. Better understanding and prediction of leachate generation, containment, and treatment are needed. This book contains a literature review of various methodologies that have been developed for prediction, generation, characterization, containment, control, and treatment of leachate from sanitary landfills. The contents of this book are divided into nine chapters.


Each chapter contains theory and definition of the important design parameters, literature review, example calculations, and references.


Chapter 1 is devoted to basic facts of solid waste problems current status and future trends towards waste reduction and recycling.


Chapter 2 provides a general overview of municipal solid waste generation, collection, transport, resource recovery and reuse, and disposal options. The current status of sanitary landfill design and operation, problems associated with the landfilling, and future trends are presented in


Chapter 3. Methods of enhanced stabilization, recycling landfill space, methane recovery, and above grade landfilling, and closure and post closure care of completed landfills are also discussed in detail.


Chapter 4 provides a general overview of Subtitle D regulations and its impact upon sanitary landfilling practices.


Chapter 5 is devoted entirely to moisture routing and leachate generation mechanisms. Examples of calculation procedure for determining the leachate quantity produced at a landfill are presented.


Chapter 6 is devoted to chemical characterization of leachate that changes over the life of the fill. Both theoretical and experimental results are provided to estimate the leachate quality.


Chapter 7 provides leachate attenuation processes and mechanisms.


Chapter 8 is devoted to leachate collection systems. Natural soil sealants, admixed materials and synthetic membranes, their effectiveness, and methods of installation and economics are fully discussed.


Chapter 9 provides a detailed review of leachate treatment methodology.


Kinetic coefficients and treatment plant design considerations are summarized for the sole purpose of assisting consultants to design leachate treatment facilities. Leachate treatment case histories and numerous process trains are presented for treating leachate from young landfill. The book also describes how the process train can be changed effectively as leachate quality changes with time.


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