17 resultados para Propellant


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De-orbiting satellites at end of mission would prevent generation of new space debris. A proposed de-orbit technology involves a bare conductive tape-tether, which uses neither propellant nor power supply while generating power for on-board use during de-orbiting. The present work shows how to select tape dimensions for a generic mission so as to satisfy requirements of very small tether-to-satellite mass ratio mt/MS and probability Nf of tether cut by small debris, while keeping de-orbit time tf short and product tf ×× tether length low to reduce maneuvers in avoiding collisions with large debris. Design is here discussed for particular missions (initial orbit of 720 km altitude and 63° and 92° inclinations, and 3 disparate MS values, 37.5, 375, and 3750 kg), proving it scalable. At mid-inclination and a mass-ratio of a few percent, de-orbit time takes about 2 weeks and Nf is a small fraction of 1%, with tape dimensions ranging from 1 to 6 cm, 10 to 54 μμm, and 2.8 to 8.6 km. Performance drop from middle to high inclination proved moderate: if allowing for twice as large mt/MS, increases are reduced to a factor of 4 in tf and a slight one in Nf, except for multi-ton satellites, somewhat more requiring because efficient orbital-motion-limited electron collection restricts tape-width values, resulting in tape length (slightly) increasing too.

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Valuable black powder has been produced traditionally by the wheel-mill grinding process. It is a process which evolved since the 12th century until his crowning moment ca. 1850. The current system of manufacturing black powder has barely changed in 150 years. This traditional system has and inherent risk of explosion in several stages which is not avoidable. Laws and restrictions are constantly increasing. So do the transportation costs, whatever are his final use. Nowadays the consumer price could be multiplied by easily more than ten times the original production cost. Traditional factories tend to group, merge and move away from settled areas. Obviously this protects the factories from public opinion in case of an accident thus increases the final cost of the propellant. The wet production could allow plants to scatter and decrease production costs. A wet method of production is proposed and developed in this project. The components are mixed in presence of water and extracted with an organic solvent. This conditions insures there is no risk of explosion. The method uses low and cheap technology. Precise calculations are presented among thermodynamic, legal and economic factors. Although the work is based in traditional (KNO3-C-S) black powder, other oxidizers with present interest like are studied. Furthermore, traditional production systems and quality processes are also discussed. Obtener pólvora negra ha sido posible gracias a la producción por vía seca con el molino de ruedas. Es un procedimiento que ha estado en evolución desde el siglo XII hasta su cénit a mediados del siglo XIX. Las producciones actuales utilizan este sistema que apenas ha variado en 150 años. El proceso clásico implica riesgos inherentes e inevitables de explosión en varias de sus etapas. Cada día la legislación es progresivamente más restrictiva con el transporte de explosivos. Las pólvoras, sean usadas para pirotecnia, cartuchería o materiales energéticos, están sujetas a gravámenes por el transporte. Hoy día el precio al consumidor puede llegar a estar multiplicado hasta más de diez veces el coste de producción. Las producciones tradicionales tienden a agruparse y alejarse de las poblaciones. Esto las protege, en caso de accidente, de la opinión pública aunque a costa de encarecer el producto. La producción húmeda es fácilmente escalable y apenas requiere inversión pudiendo dispersar las producciones y abaratar los costes. En este proyecto se propone un sistema de producción de explosivos salinos por vía húmeda, a través de una incorporación acuosa y una extracción con un disolvente orgánico. Las condiciones de operación aseguran que no hay riesgo ninguno de explosión. El sistema utiliza tecnología muy accesible y económica. Se han incorporado cálculos meticulosos además de discutir aspectos termodinámicos, legislativos y económicos. Aunque el trabajo se centra en la pólvora clásica (KNO3-C-S), se estudian alternativas con mayor interés actual. Así mismo se analizan los métodos de producción tradicionales y los efectos sobre la calidad de la pólvora.