936 resultados para Franklin Mine
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L’étude porte sur les retombées économiques de la mine de Voisey’s Bay sur les conditions socioéconomiques des communautés de Rigolet, Makkovik, Hopedale, Nain et de Postville. Elle adopte une approche multidimensionnelle à la fois descriptive et comparative. Les données utilisées proviennent des recensements de la population de 1991, 1996, 2001 et de 2006 conduits par Statistique Canada. Elle utilise aussi les données de l’Enquête nationale auprès des ménages de 2011. Les données internes à la mine proviennent des Rapports de responsabilités sociales de la firme VBNC qui se charge d’exploiter la mine. Nous avons également en recours aux données des rapports du Gouvernement du Nunatsiavut depuis sa mise en place en 2005. Cette étude s’inscrit dans un contexte d’exploitation des ressources naturelles. Elle montre que, contrairement à des considérations voulant que celles-ci constituent une source de richesses, leurs effets sur les conditions socioéconomiques des communautés locales restent mitigés. Les firmes minières s’acharnent à maximiser leurs profits et les conditions de vie des communautés locales n’en bénéficient que partiellement. Pour notre étude, nous faisons l’hypothèse que cette mine ait eu de nombreuses retombées directes ou indirectes (emplois, achats de biens et services, taxes minières, investissements et redevances) et que celles-ci ont modifié les conditions de vie des communautés concernées. Nous avons opté pour une méthodologie basée sur un modèle de retombées économiques de la mine de Voisey’s Bay; un outil conçu avec l’inspiration de la grille d’évaluation des projets miniers, gaziers et pétroliers sur les conditions socioéconomiques de Paul Kishchuk. Ce modèle nous a permis d’analyser les effets de Voisey’s Bay sur la démographie, le marché du travail, la scolarité, le revenu et le logement. Les dimensions identifiées font état d’une légère amélioration sur les conditions de vie des communautés, bien que l’effet ne puisse pas être totalement attribué à la mine, étant donné le rôle important joué par le Gouvernement du Nunatsiavut depuis sa création.
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L’usine Niobec traite un minerai de pyrochlore porteur de niobium pour produire le ferro-niobium utilisé pour la fabrication d’acier. L’usine récupère environ 60% des minéraux de niobium. Les rejets contiennent du niobium et d’autres espèces minérales potentiellement valorisables. Les travaux présentés dans ce mémoire visent à identifier les espèces pouvant être valorisées dans les rejets de Niobec dont les plus prometteurs sont les éléments de terres rares, les minéraux de niobium et l’apatite. Dans le but de concentrer l’apatite des rejets de l’usine, une analyse chimique des rejets a permis de cibler comme flux d’intérêt les particules de dimension supérieure à 0,038mm dans le concentré de carbonates et les rejets du circuit de flottation du pyrochlore. La méthode utilisée pour valoriser les phosphates est la flottation. Les meilleurs résultats ont été obtenus par flottation directe des minéraux de phosphate du concentré de carbonates dans les rejets de Niobec. Le collecteur utilisé est un acide gras de type AERO 6493 avec un mélange d’amidon de tapioca et de NaOH utilisé comme déprimant pour les carbonates. Ces conditions ont permis de produire un concentré d’apatite titrant entre 30 à 32 % P2O5 avec un rendement de 50 à 60% du P2O5 contenue dans le concentré de carbonates. La teneur en MgO dans le concentré d’apatite est comprise entre 3 et 4% comparativement à 15% dans l’alimentation. Puisque le MgO est principalement associé à la dolomie ces résultats confirment une bonne dépression de ce minéral lors de la flottation de l’apatite du concentré de carbonates. La flottation de l’apatite à partir des rejets du pyrochlore n’a pas permis d’obtenir un concentré de valeur commerciale. Le meilleur résultat obtenu lors des essais de flottation sur les rejets pyrochlore correspond à une teneur de 14%avec un rendement de 53% P2O5. Les résultats obtenus montrent toutefois le potentiel associé à la récupération des minéraux de phosphates et justifient la poursuite des travaux, cette fois, moins exploratoires que les travaux rapportés dans ce mémoire.
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For fifty years (1949–99) the now-abandoned Giant Mine in Yellowknife emitted arsenic air and water pollution into the surrounding environment. Arsenic pollution from Giant Mine had particularly acute health impacts on the nearby Yellowknives Dene First Nation (YKDFN), who were reliant on local lakes, rivers, and streams for their drinking water, in addition to frequent use of local berries, garden produce, and medicine plants. Currently, the Canadian government is undertaking a remediation project at Giant Mine to clean up contaminated soils and tailings on the surface and contain 237,000 tonnes of arsenic dust that are stored underground at the Giant Mine. Using documentary sources and statements of Yellowknives Dene members before various public hearings on the arsenic issue, this paper examines the history of arsenic pollution at Giant Mine as a form of “slow violence,” a concept that reconfigures the arsenic issue not simply as a technical problem, but as a historical agent of colonial dispossession that alienated an Indigenous group from their traditional territory. The long-term storage of arsenic at the former mine site means the effects of this slow violence are not merely historical, but extend to the potentially far distant future.
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lNTRODUCTION; This part is the general introduction of this thesis. The research subject, alunite mine of Wenzhou, has a history of more than 600 years. Not only in the history, has it still played an important role in the people's daily life of Fanshan Town. According to the legend, it was Qin Fu, a refugee, found the way of produce the alum totally by accident. However, we try to find out the real history of its mining and production of alum. ln fact, we have found some ancient documents concerning its history. Especially in the book « The chronicles of Wenzhou Fu of Hongzhi », we found some original information, such as the ancient method of mining and producing alum, etc. ln some other ancient documents, we found some important information, too. With such a long history, the alunite mine has held a lot of heritage, no matter tangible or intangible. Unfortunately, due to some reasons, the condition of the mine becomes worse and worse. ln studying his history, technology and the present situation, we intend to find some ways to solve the problems, and restart its development in other fields. Certainly, we should make a brief introduction of the alunite as well as the alum. The second part of the introduction concentrates in the uses of alum, providing an easier comprehension of this object.
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Exposure to diesel particulate matter from diesel exhaust has been shown to have adverse health effects in humans. In 2012 The International Agency for Research on Cancer classified diesel exhaust as a group 1 know human carcinogen. Because of the associated health effects, there has been a strong push to reduce the amount of diesel exhaust present in the mining industry. Biodiesel is one to the more common and promising control options used to reduce the amount of diesel particulate matter that is generated during fuel combustion. The use of biodiesel over petroleum diesel has been shown to reduce not only particulate matter, but hydro carbon and carbon monoxide mass emissions as well. Personal and area samples were collected at an underground metal mine in the northwestern United States to evaluate the current blend of B70 biodiesel. The objective of this research was to evaluate the carbon levels associated with diesel particulate matter generated from the combustion of a B70 biodiesel. Data was also compared to past studies on which diesel particulate matter from petroleum diesel was evaluated. Samples were taken on four separate four day campaigns between March and October of 2014. Area samples were taken from 7 different areas in the mine and personal samples were taken from a 20 person cohort. The equipment used for sampling was compliant with the NIOSH 5040 method. Statistical analysis of the results was done using Minitab 17 software. The statistical analysis showed that the total carbon concentrations from biodiesel were well below the MSHA exposure limit. Results also showed that organic/elemental carbon ratios were consistent with past studies as the concentrations of organic carbon were significantly higher than those of elemental carbon.
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The Cliff Mine, an archaeological site situated on the Keweenaw Peninsula of Michigan, is the location of the first successful attempt to mine native copper in North America. Under the management of the Pittsburgh & Boston Mining Company from 1845-1879, two-third of the Cliff’s mineral output was in the form of mass copper, some pieces of which weighed over 5 tons when removed from the ground. The unique nature of mass copper and the Cliff Mine’s handling of it make it one of the best examples of early mining processes in the Keweenaw District. Mass copper only constituted 2% of the entire product of the Lake Superior copper districts, and the story of early mining on the Peninsula is generally overshadowed by later, longer running mines such as the Calumet & Helca and Quincy Mining Companies. Operating into the mid-twentieth century, the size and duration of these later mines would come to define the region, though they would not have been possible without the Cliff’s early success. Research on the Cliff Mine has previously focused on social and popular history, neglecting the structural remains. However, these remains are physical clues to the technical processes that defined early mining on the Keweenaw. Through archaeological investigations, these processes and their associated networks were documented as part of the 2010 Michigan Technological Archaeology Field School’s curriculum. The project will create a visual representation of these processes utilizing Geographic Information Systems software. This map will be a useful aid in future research, community engagement and possible future interpretive planning.
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Heat management in mines is a growing issue as mines expand physically in size and depth and as the infrastructure grows that is required to maintain them. Heat management is a concern as it relates to the health and safety of the workers as set by the regulations of governing bodies as well as the heat sensitive equipment that may be found throughout the mine workings. In order to reduce the exposure of working in hot environments there are engineering and management systems that can monitor and control the environmental conditions within the mine. The successful implementation of these methods can manage the downtime caused by heat stress environments, which can increase overall production. This thesis introduces an approach to monitoring and data based heat management. A case study is presented with an in depth approach to data collection. Data was collected for a period of up to and over one year. Continuous monitoring was conducted by equipment that was developed both commercially and within the mine site. The monitoring instrumentation was used to assess the environmental conditions found within the study area. Analysis of the data allowed for an engineering assessment of viable options in order to control and manage the environment heat stress. An option is developed and presented which allows for the greatest impact on the heat stress conditions within the case study area and is economically viable for the mine site.
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The purpose of this paper is to investigate the potential for use of UAVs in underground mines and present a prototype design for a novel autorotating UAV platform for underground 3D data collection.
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Apresenta-se uma metodologia para caracterizar a transmissividade dos Granitos Hercínicos e Metasedimentos do Complexo Xisto-Grauváquico do maciço envolvente e subjacente à antiga área mineira de urânio da Quinta do Bispo. Inicia-se com a modelação das litologias e grau de alteração a que se segue a simulação condicional da densidade de fracturação. No final, a densidade de fracturação é convertida num modelo 3D de transmissividade por relação com os resultados dos ensaios de bombagem. The purpose of this work is to present a methodology for characterizing the transmissivity of the Hercynian granites and complex schist–greywacke metasediment rocks surrounding and underlying the old Quinta do Bispo uranium mining site. The methodology encompasses modelling of lithologies and weathering levels, followed by a conditional simulation of fracture density. Fracture density is then converted into a 3D model of transmissivity via a relationship with pumping tests.
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The historical challenge of environmental impact assessment (EIA) has been to predict project-based impacts accurately. Both EIA legislation and the practice of EIA have evolved over the last three decades in Canada, and the development of the discipline and science of environmental assessment has improved how we apply environmental assessment to complex projects. The practice of environmental assessment integrates the social and natural sciences and relies on an eclectic knowledge base from a wide range of sources. EIA methods and tools provide a means to structure and integrate knowledge in order to evaluate and predict environmental impacts.----- This Chapter will provide a brief overview of how impacts are identified and predicted. How do we determine what aspect of the natural and social environment will be affected when a mine is excavated? How does the practitioner determine the range of potential impacts, assess whether they are significant, and predict the consequences? There are no standard answers to these questions, but there are established methods to provide a foundation for scoping and predicting the potential impacts of a project.----- Of course, the community and publics play an important role in this process, and this will be discussed in subsequent chapters. In the first part of this chapter, we will deal with impact identification, which involves appplying scoping to critical issues and determining impact significance, baseline ecosystem evaluation techniques, and how to communicate environmental impacts. In the second part of the chapter, we discuss the prediction of impacts in relation to the complexity of the environment, ecological risk assessment, and modelling.