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Solid wastes integrated management in Rio de Janeiro: input-output analysis.

This paper analyzes the socioeconomic aspects of solid waste management in Rio de Janeiro. An "input-output" methodology was used to examine how the secondary product resulting from recycling is re-introduced into the productive process. A comparative profile was developed from the state of recycling and the various other aspects of solid waste management, both from the perspective of its economic feasibility and from the social aspects involved. This was done analyzing the greenhouse gas emissions and the decreased energy consumption. The effects of re-introducing recycled raw materials into the matrix and the ensuing reduction of the demand for virgin raw materials was based on the input-output matrix for the State of Rio de Janeiro. This paper also analyzes the energy savings obtained from recycling and measures the avoided emissions of greenhouse gases.

Argentina↗

The management of hospital medical waste. How to increase efficiency through a medical waste audit.

Medical waste is a nightmare for hospital administrators, cutting across department boundaries and incorporating legal, financial, and community concerns. In this two-part article the author provides a stepwise approach to effective waste management. The first part gives background information on waste generation, storage, and disposal and delineates the framework of a medical waste audit. This audit is put to the test in the second part, where data from a pilot trial at an actual hospital are presented and discussed.

Costs and Cost Analysis↗

Environmental assessment of solid waste systems and technologies: EASEWASTE.

A new model has been developed for evaluating the overall resource consumption and environmental impacts of municipal solid waste management systems by the use of life cycle assessment. The model is named EASEWASTE (Environmental Assessment of Solid Waste Systems and Technologies) and is able to compare different waste management strategies, waste treatment methods and waste process technologies. The potential environmental impacts can be traced back to the most important processes and waste fractions that contribute to the relevant impacts. A model like EASEWASTE can be used by waste planners to optimize current waste management systems with respect to environmental achievements and by authorities to set guidelines and regulations and to evaluate different strategies for handling of waste. The waste hierarchy has for decades been governing waste management but the ranking of handling approaches may not always be the most environmentally friendly. The EASEWASTE model can identify the most environmentally sustainable solution, which may differ among waste materials and regions and can add valuable information about environmental achievements from each process in a solid waste management system.

Environment↗

Assessing the environmental burdens of anaerobic digestion in comparison to alternative options for managing the biodegradable fraction of municipal solid wastes.

Biological treatment processes including anaerobic digestion (biogasification) and composting are increasingly being considered by waste management officials and planners as alternatives for managing the mainly organic residues of municipal solid wastes (MSW). The integrated waste management model which is based upon the application of life-cycle analysis was employed to compare the environmental burdens of landfilling, composting and anaerobic digestion of MSW at a mid-sized Canadian community. Energy consumption (or recovery), residue recoveries and emissions to air and water were quantified. Scenario comparisons were analyzed to demonstrate that the environmental burdens associated with anaerobic digestion are reduced in comparison with the alternative options. The major benefit occurs as a result of the electricity produced from burning the biogas and then supplying the 'green power' to the local electrical grid.

Bacteria, Anaerobic↗

Soil and solid poultry waste nutrient management and water quality.

Concerns about the impacts of nitrogen, phosphorus, and pathogens on surface and ground water quality has forced the poultry industry to implement voluntary waste management guidelines for use by growers. In some states, animal waste guidelines are being enforced by regulatory agencies. Strategies that growers may use to properly dispose of poultry waste include: 1) local land application as a fertilizer; 2) offsite marketing for use as a fertilizer or soil amendment, feed additive, or energy source; and 3) chemical additives that will immobilize nitrogen and phosphorus in the manure or litter. If properly followed, these and other innovative strategies should be adequate to protect surface and ground water quality without adversely affecting the economics of poultry production.

Animal Husbandry↗

Total quality management and statistical quality control: practical applications to waste stream management.

TQM offers a completely new approach to problem solving in health care. The approach requires dedication and persistence in monitoring, understanding, and changing systems at a level that has never been reached before in the United States' health care system. Materiel management, purchasing, nursing, housekeeping, and administration now have the necessary tools to centrally study the medical waste stream flow at their facilities. The intent of this article is to display how TQM techniques can be applied to minimize a hospital's medical waste stream. The approach of studying medical waste as a defect generated during the process of delivering high-quality care enables a hospital to pinpoint causes of these defects, modify the parent system of the defect, and lessen the generation of medical waste defects. Successful implementation of these techniques as a continuous process will enable hospitals to be leaders in the preservation of their host communities' environments.

Data Collection↗

Management and utilization of poultry wastes.

Waste by-products such as excreta or bedding material that are generated by the worldwide annual production of more than 40 million metric tons (t) of poultry meat and 600 billion eggs are generally land applied as the final step of a producer's waste management strategy. Under proper land application conditions, the nutrients and organisms in poultry wastes pose little environmental threat. Environmental contamination occurs when land application of poultry wastes is in excess of crop utilization potential, or is done under poor management conditions causing nutrient loss from environmental factors such as soil erosion or surface runoff during rainfall. Environmental parameters of concern are N, P, and certain metals (Cu and Zn in particular), as well as pathogenic microorganisms that may be contained in poultry waste. The biochemical cycle of N is very dynamic, and N contained in poultry waste may either be removed by crop harvest, leave the animal production facility, waste treatment lagoon, or application field as a gas (NH3, NO, NO2, N2O, or N2), or, due to its mobility in soil, be transported in organic or inorganic N forms in the liquid state via surface runoff or leaching into groundwater. Elevated concentrations of NO3-N in groundwater used for human consumption is a health risk to infants that are susceptible to methemoglobinemia. An environmental impact resulting from elevated NO3-N is eutrophication of surface waters. Ammonia loss from poultry waste is an environmental concern because of volatilized wet and dry deposits of NH3 into nitrogen-sensitive ecosystems. Phosphorus in poultry wastes may contribute to environmental degradation by accelerating the process of eutrophication. Unlike N, P is very immobile in soil and must first be transported to a surface water environment to have an environmental impact. It is generally accepted, however, that this nutrient affects receiving waters via transport in eroding soil as sediment-bound P or in surface runoff as soluble inorganic or organic P. Numerous studies have reported that excess P contained in land-applied manures may contribute to eutrophication. Soils containing P concentrations that greatly exceed the agronomic potential of crops may require years or even decades to return to levels that are crop limiting for this nutrient. Environmental concerns include the capacity of such soils to adsorb new P and the amount of P loss from these soils from erosion, runoff, drainage, or leaching to groundwater. Although much information is available regarding the loss of P from agricultural fields from erosion and runoff, less information is available regarding P losses from fields receiving poultry wastes. However, studies have shown that there are many challenges to controlling P losses from fields receiving manures. In addition, subsurface transport of P resulting from repeated application of poultry manure onto soils that are artificially drained is an environmental concern where drainage waters enter or interact with water bodies sensitive to eutrophication. Trace elements such as As, Co, Cu, Fe, Mn, Se, and Zn are often added in excess to poultry feed to increase the animal's rate of weight gain, feed efficiency, and egg production and to prevent diseases. Because most of the excess trace elements are not absorbed by the bird, the concentration of elements excreted in the manure will reflect dietary overformulation. Because trace elements are generally required in very small quantities for crop growth and, like P, are immobile in most soil types, their concentrations will increase with repeated land application of poultry wastes. Of particular concern are accumulations of Cu and Zn in certain soil types utilized for certain crops. Copper and Zn toxicity for some crops have been documented in some areas receiving repeated land-applied poultry wastes. A potential environmental concern relative to poultry litter and trace elements in receiving soils involves the transpor

Animal Feed↗

Industrial waste minimization--experience from Lithuania.

Waste represents the loss of both material and energy resources. Because excessive waste generation is a symptom of inefficient production processes, low durability of goods and unsustainable consumption patterns, waste quantities can be considered as an indicator of how efficiently society uses raw materials. Therefore, good waste management begins with preventing waste from being generated. The objective of this paper is to present the work related to waste minimization in Lithuania by introducing successful examples from industry, to bring ideas and inspiration to authorities, companies, and others working in the field of waste minimization. The paper is supporting EU waste policy manifested in the EU waste strategy and the proposed Sixth Environmental Action Programme. Many enterprises are still unaware of the full costs of waste management. Therefore, by applying the methodology presented in the paper, companies could make substantial reductions in their waste, and therefore, disposal costs. Waste minimization (WM) often results in substantial savings through reduced purchasing costs and more efficient practices. It also has wide environmental benefits such as reduced energy consumption and less environmental pollution, conservation of natural resources and extension of valuable landfill capacity. Therefore, waste prevention should have the highest priority in waste strategies, as this is the only way to stop the growth of the amount of waste and reduce the loss of resources (EUC Bulletin 12, 1996).

Conservation of Natural Resources↗

Environmental biotechnology for sustainability.

In the post-industrial society, waste management is integrated in the concepts of responsibility, reliability and continuity. Therefore industry and public office are obliged to implement the concepts of structured environmental management systems more and more strictly. The endpoints are dependent on the type of wastes and on the priorities set by society. They will with time evolve towards more restriction of all kinds of emissions. This will require increasing inputs of labour, information technology and energy into waste treatment and overall waste management. Particularly for aqueous and gaseous wastes that are not contained, continuously improving treatment with maximum re-use and minimum dissipation in the ecosphere will be the trend of the future. Moreover, the public in general and the individual citizen in particular will request to have (bio)assays to monitor regularly and autonomously the quality of his environment. Such advanced waste management requires considerable energy input. It thus may come in conflict with current concerns about CO2-emissions and the Kyoto agreements. Innovative approaches to combine waste management and the International Climate Change Partnership (ICCP) directives, for instance by implementing biological carbon sequestration, are therefore warranted. Biotechnology has a major role to play particularly in terms of advanced treatment down to ng/l-levels and in terms of validating the quality of the environment by means of powerful and intelligent bio-monitoring devices.

Biotechnology↗

Current legislation governing clinical waste disposal.

The paper considers UK and EC Legislation regulating clinical waste disposal. The legal definition of clinical waste is distinguished from both 'health care waste' and 'infectious waste'. Waste can be pre-treated so as to enable it to be disposed of through the normal waste stream. The legislation is looked at by reference to (i) production and storage; (ii) handling and transportation; and (iii) disposal. It is vitally important to draw up a waste management strategy. Effective segregation at source is a key factor in the waste management strategy and it will enable hospital authorities to make economic savings in waste disposal costs. The Paper considers the Duty of Care under the Environmental Protection Act 1990 and stresses the obligation on each person in the waste disposal chain to discharge the Duty. Landfilling as a method of disposal is discouraged except for waste where no possibility of infection arises. There are problems with hospital incinerators meeting modern emission standards. Requirements for licensing new incinerators are examined. The new Waste Management Licensing Regulations 1994 require applications for Waste Management Licenses to demonstrate technical and financial competence as 'fit and proper persons'. The Paper concludes by examining penalties for breach of regulatory provisions.

England↗

Improving the regulation and management of low-activity radioactive wastes.

This paper summarizes the first phase of a study in progress by a committee of the National Research Council's Board on Radioactive Waste Management. The Board initiated the study after observing that statutes and regulations administered by the federal and state agencies that control low-activity radioactive wastes have developed as a patchwork over almost 60 y. These controls usually reflect the enterprise or process that produced the waste rather than the waste's radiological hazard. Inconsistencies in the regulatory patchwork or its application may have led to overly restrictive controls for some low-activity wastes while others were neglected in comparison. In the first phase of this study, the committee reviewed current low-activity waste inventories, regulations, and management practices. This led the committee to develop five categories that encompass the spectrum of low-activity wastes and serve to illustrate gaps and inconsistencies in current regulations and management practices. The committee completed its first phase with four findings that will lead into the final phase of the study. This paper is excerpted from the committee's interim report that was issued in October 2003.

Decision Making↗

[Management of waste disposal in medical institutions].

Recently new regulations were elaborated for the management of medical wastes in Austria, FRG, Canada and USA. There is no rule laying down the requirements of the management of medical wastes in Hungary. On the basis of foreign experiences the medical wastes are proposed to range into categories as follow: I. Waste that should be handled in special way within and outside the health care facilities. II. Waste, that should be handled in a special way within the health care facilities. III. General waste (municial-type waste). Basic requirement is the segregating collection of wastes. Color-coding is proposed to identify the content of containers and bags. Incinerators combined with pyrolysis and emission control unites should be preferred to the disposal of medical wastes. The author proposes to issue a rule setting out definitions and basic principles of management of medical wastes. Individual health care establishments should prepare own written policies and measures for waste handling appropriate to their specific requirements.

Austria↗

Estimation of methane and nitrous oxide emission from animal production sector in Taiwan during 1990-2000.

To investigate the greenhouse gases emissions from the feeding and waste management of livestock and poultry, methane and nitrous oxide emissions were estimated from the local measurement and IPCC guidelines during 1990-2000 in Taiwan. Hog is the major livestock and is followed by goat and cattle, while chicken is the major poultry and is followed by duck and geese. Methane emission from enteric fermentation of livestock was 30.9 Gg in 1990, increased to 39.3 Gg in 1996, and then decreased gradually to 34.9 Gg in 2000. Methane emission from the waste management was 48.5 Gg in 1990, reached the peak value of 60.7 Gg in 1996, and then declined to 43.3 Gg in 2000. In the case of poultry, annual methane emission from enteric fermentation and waste management was 30.6-44.1 ton, and 8.7-13.2 Gg, respectively. Nitrous oxide emission from waste management of livestock was 0.78 ton in 1990, increased to 0.86 ton in 1996, and then decreased to 0.65 ton in 2000. Nitrous oxide emission from waste management of poultry was higher than that of livestock with 1.11 ton in 1990, 1.68 ton in 1999, and 1.65 ton in 2000. There is an urgent need to reduce methane emission from enteric fermentation and recover methane from anaerobic waste treatment for energy in livestock and poultry feeding in Taiwan.

Air Pollutants↗

Management of bio-medical waste: awareness and practices in a district of Gujarat.

With the objective of assessing the level of awareness about the various aspects of biomedical waste and disposal practices by the medical practitioners this study was conducted. It was a cross sectional study. 30 hospitals with more than 30 beds minimum were randomly selected from Sabarkantha district, Gujarat. The doctors and auxiliary staff of those 30 hospitals were the study population. While all the doctors knew about the existence of the law related to biomedical waste but details were not known. Doctors were aware of risk of HIV and Hepatitis B and C, whereas auxiliary staff (ward boys, ayabens, sweepers) had very poor knowledge about it. There was no effective waste segregation, collection, transportation and disposal system at any hospital in the district. There is an immediate and urgent need to train and educate all doctors and the staff to adopt an effective waste management practices.

Cross-Sectional Studies↗

Analysis of scavengers' activities and recycling in some cities of Nigeria.

The state of solid waste recycling by scavengers in Onitsha, a heavily commercial city in Anambra State, and some other urban areas such as Nsukka, Enugu, and Port Harcourt was analyzed. Data were obtained through interviews of scavengers who deal with recyclables. Although the activities of scavengers are sub-optimal, they can have a great impact on Nigerian economy with respect to resource conservation, creation of job opportunities, and reduction of the magnitude of waste disposal problems. A cost analysis is presented to compare the different forms of recycling utilized by municipal solid waste management. It is shown that a well-planned recycling program with recycling and composting would result in 18.6% savings in waste management costs and 57.7% in landfill avoidance costs. However, if the compost materials are not recycled, the corresponding savings in cost become 8.6% and 28.6%, respectively. The option with the lowest cost involves encouraging individual households to separate at the source their recyclables, which are bought by scavengers. This results in 78.0% savings in waste management cost and 79.5% landfill avoidance cost. A low-cost approach aimed at the integration of scavenging activities into conventional solid waste management is presented.

Cities↗

Product self-management: evolution in recycling and reuse.

This paper explores the potential to make product recycling and reuse easier by shifting responsibility for product management toward the product itself. Examples range from barcode-enabled Internet sales of used products to RFID-enabled garbage trucks that identify recyclable items and provide rebates. Initial steps toward product self-management have made opportunistic use of product bar codes and Internet markets. In the United States, Internet markets are driving increased reuse of products. In the European Union, recycling and waste management policy is driving the use of radio electronics in waste management. Prospects for product self-management are assessed from both a technological and an economic perspective. The technological analysis indicates that radio-frequency tags offer some advantages over bar codes, but their application to product self-management requires considerable investment in the waste management infrastructure. This suggests that early applications of advanced product tags are most suitable for Germany and other countries where the waste management industry has already integrated information technology into its operations. The economic analysis indicates that increased reuse of products can reduce consumption of new products and materials, although on a less than one-to-one basis, simultaneously reducing costs for consumers and deriving more value from existing products.

Commerce↗

The use of statistical entropy to evaluate the utilisation of incinerator ashes for the production of cement.

The paper discusses the utilisation of MSW incinerator residues for the production of cement with regard to materials management. Two objectives of waste management are the protection of men and the environment and resource conservation. Thus metals have to be recycled or transferred into appropriate final sinks. For both options a concentrating step is indispensable. MSW incinerators are such concentrating processes, as they accumulate metals in their residues. The mixing of high-concentrated residues with low-concentrated clinker in order to produce cement results in dilution of metals. This contradicts the above objectives. Concentrating and dilution processes can be described by materials balances. To evaluate different uses of MSW residues in the cement production the statistical entropy of the resulting distributions of selected metals (Cd, Pb, Cu) is assessed. The result is that in order to avoid an increase in the entropy, neither fly ashes nor bottom ashes of MSW incinerators should be utilised at large scale without pre-treatment. The method can be used to determine the quality of the residues so that they can be used in accordance with the objectives of waste management.

Conservation of Natural Resources↗