COMPOSTING AS A WAY TO CONVERT CELLULOSIC BIOMASS AND ORGANIC WASTE INTO HIGH-VALUE SOIL AMENDMENTS: A REVIEW
Plant-derived cellulosic materials play a critical role when organic wastes are composted to produce a beneficial amendment for topsoil. This review article considers publications dealing with the science of composting, emphasizing ways in which the cellulosic and lignin components of the composted...
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North Carolina State University
2010-11-01
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Online Access: | http://www.ncsu.edu/bioresources/BioRes_05/BioRes_05_4_2808_Hubbe_NS_Composting_Review_1298.pdf |
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doaj-e9b080a50e5b43958e9da02a86d3e4672020-11-24T22:30:50ZengNorth Carolina State UniversityBioResources1930-21262010-11-015428082854COMPOSTING AS A WAY TO CONVERT CELLULOSIC BIOMASS AND ORGANIC WASTE INTO HIGH-VALUE SOIL AMENDMENTS: A REVIEWMartin A. HubbeMousa NazhadCarmen SánchezPlant-derived cellulosic materials play a critical role when organic wastes are composted to produce a beneficial amendment for topsoil. This review article considers publications dealing with the science of composting, emphasizing ways in which the cellulosic and lignin components of the composted material influence both the process and the product. Cellulose has been described as a main source of energy to drive the biological transformations and the consequent temperature rise and chemical changes that are associated with composting. Lignin can be viewed as a main starting material for the formation of humus, the recalcitrant organic matter that provides the water-holding, ion exchange, and bulking capabilities that can contribute greatly to soil health and productivity. Lignocellulosic materials also contribute to air permeability, bulking, and water retention during the composting process. Critical variables for successful composting include the ratio of carbon to nitrogen, the nature of the cellulosic component, particle size, bed size and format, moisture, pH, aeration, temperature, and time. Composting can help to address solid waste problems and provides a sustainable way to enhance soil fertility.www.ncsu.edu/bioresources/BioRes_05/BioRes_05_4_2808_Hubbe_NS_Composting_Review_1298.pdfCompostingSoilCellulosic biomassBiodegradationCarbonNitrogenHumusOdor controlRecalcitranceAerationBacterial succession |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Martin A. Hubbe Mousa Nazhad Carmen Sánchez |
spellingShingle |
Martin A. Hubbe Mousa Nazhad Carmen Sánchez COMPOSTING AS A WAY TO CONVERT CELLULOSIC BIOMASS AND ORGANIC WASTE INTO HIGH-VALUE SOIL AMENDMENTS: A REVIEW BioResources Composting Soil Cellulosic biomass Biodegradation Carbon Nitrogen Humus Odor control Recalcitrance Aeration Bacterial succession |
author_facet |
Martin A. Hubbe Mousa Nazhad Carmen Sánchez |
author_sort |
Martin A. Hubbe |
title |
COMPOSTING AS A WAY TO CONVERT CELLULOSIC BIOMASS AND ORGANIC WASTE INTO HIGH-VALUE SOIL AMENDMENTS: A REVIEW |
title_short |
COMPOSTING AS A WAY TO CONVERT CELLULOSIC BIOMASS AND ORGANIC WASTE INTO HIGH-VALUE SOIL AMENDMENTS: A REVIEW |
title_full |
COMPOSTING AS A WAY TO CONVERT CELLULOSIC BIOMASS AND ORGANIC WASTE INTO HIGH-VALUE SOIL AMENDMENTS: A REVIEW |
title_fullStr |
COMPOSTING AS A WAY TO CONVERT CELLULOSIC BIOMASS AND ORGANIC WASTE INTO HIGH-VALUE SOIL AMENDMENTS: A REVIEW |
title_full_unstemmed |
COMPOSTING AS A WAY TO CONVERT CELLULOSIC BIOMASS AND ORGANIC WASTE INTO HIGH-VALUE SOIL AMENDMENTS: A REVIEW |
title_sort |
composting as a way to convert cellulosic biomass and organic waste into high-value soil amendments: a review |
publisher |
North Carolina State University |
series |
BioResources |
issn |
1930-2126 |
publishDate |
2010-11-01 |
description |
Plant-derived cellulosic materials play a critical role when organic wastes are composted to produce a beneficial amendment for topsoil. This review article considers publications dealing with the science of composting, emphasizing ways in which the cellulosic and lignin components of the composted material influence both the process and the product. Cellulose has been described as a main source of energy to drive the biological transformations and the consequent temperature rise and chemical changes that are associated with composting. Lignin can be viewed as a main starting material for the formation of humus, the recalcitrant organic matter that provides the water-holding, ion exchange, and bulking capabilities that can contribute greatly to soil health and productivity. Lignocellulosic materials also contribute to air permeability, bulking, and water retention during the composting process. Critical variables for successful composting include the ratio of carbon to nitrogen, the nature of the cellulosic component, particle size, bed size and format, moisture, pH, aeration, temperature, and time. Composting can help to address solid waste problems and provides a sustainable way to enhance soil fertility. |
topic |
Composting Soil Cellulosic biomass Biodegradation Carbon Nitrogen Humus Odor control Recalcitrance Aeration Bacterial succession |
url |
http://www.ncsu.edu/bioresources/BioRes_05/BioRes_05_4_2808_Hubbe_NS_Composting_Review_1298.pdf |
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