3 resultados para Precision animal production.

em Instituto Politécnico do Porto, Portugal


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Different problems are daily discuss on environmental aspects such acid rain, eutrophication, global warming and an others problems. Rarely do we find some discussions about phosphorus problematic. Through the years the phosphorus as been a real problem and must be more discussed. On this thesis was done a global material flow analysis of phosphorus, based on data from the year 2004, the production of phosphate rock in that year was 18.9 million tones, almost this amount it was used as fertilizer on the soil and the plants only can uptake, on average, 20% of the input of fertilizer to grow up, the remainder is lost for the phosphorus soil. In the phosphorus soil there is equilibrium between the phosphorus available to uptake from the plants and the phosphorus associate with other compounds, this equilibrium depends of the kind of soil and is related with the soil pH. A reserve inventory was done and we have 15,000 million tones as reserve, the amount that is economical available. The reserve base is estimated in 47,000 million tones. The major reserves can be found in Morocco and Western Sahara, United Sates, China and South Africa. The reserve estimated in 2009 was 15,000 million tone of phosphate rock or 1,963 million tone of P. If every year the mined phosphate rock is around 22 Mt/yr (phosphorus production on 2008 USGS 2009), and each year the consumption of phosphorus increases because of the food demand, the reserves of phosphate rock will be finished in about 90 years, or maybe even less. About the value/impact assessment was done a qualitative analysis, if on the future we don’t have more phosphate rock to produce fertilizers, it is expected a drop on the crops yields, each depends of the kind of the soil and the impact on the humans feed and animal production will not be a relevant problem. We can recovery phosphorus from different waste streams such as ploughing crop residues back into the soil, Food processing plants and food retailers, Human and animal excreta, Meat and bone meal, Manure fibre, Sewage sludge and wastewater. Some of these examples are developed in the paper.

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Com as crescentes exigências do mercado e fortes restrições a nível ambiental, as indústrias modernas tendem a progredir no sentido da eficiência, sustentabilidade e rentabilidade dos seus processos produtivos. Sendo a indústria dos curtumes uma forte geradora de resíduos sólidos, é indispensável criar alternativas à valorização desses mesmos resíduos de forma a cumprir todos os requisitos ambientais. Este trabalho remete à reutilização dos resíduos, provenientes da divisão da pele em tripa após operação de descarna, com o intuito de se desenvolver um novo bio-produto apto para ser utilizado noutros sectores industriais. Os resíduos em causa consistem maioritariamente em colagéneo, que apresenta um enorme potencial para se produzir cola animal. Desta forma, este trabalho tem como objectivo principal avaliar a utilização deste tipo de resíduo na produção de um novo bio-produto, cola animal, e testar a sua aplicabilidade técnica e funcional. Com a realização deste trabalho, mostrou-se ser possível produzir um produto, a partir de retalhos da indústria de curtumes, com um perfil de carácter positivo no que diz respeito à viabilidade técnica e funcional da utilização da cola animal como eventual alternativa a um ligante, para formulações de colas de base aquosa para a indústria gráfica e do papel.

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This work presents and analyses the fat and fuel properties and the methyl ester profile of biodiesel from animal fats and fish oil (beef tallow, pork lard, chicken fat and sardine oil). Also, their sustainability is evaluated in comparison with rapeseed biodiesel and fossil diesel, currently the dominant liquid fuels for transportation in Europe. Results show that from a technological point of view it is possible to use animal fats and fish oil as feedstock for biodiesel production. From the sustainability perspective, beef tallow biodiesel seems to be the most sustainable one, as its contribution to global warming has the same value of fossil diesel and in terms of energy efficiency it has the best value of the biodiesels under consideration. Although biodiesel is not so energy efficient as fossil diesel there is room to improve it, for example, by replacing the fossil energy used in the process with renewable energy generated using co-products (e.g. straw, biomass cake, glycerine).