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Desenvolvimento de uma unidade pirolítica com reator de cilindro rotativo: obtenção de bio-óleo

机译:开发带有旋转圆筒反应器的热解装置:获得生物油

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摘要

The demand for alternative sources of energy drives the technological development so that many fuels and energy conversion processes before judged as inadequate or even non-viable, are now competing fuels and so-called traditional processes. Thus, biomass plays an important role and is considered one of the sources of renewable energy most important of our planet. Biomass accounts for 29.2% of all renewable energy sources. The share of biomass energy from Brazil in the OIE is 13.6%, well above the world average of participation. Various types of pyrolysis processes have been studied in recent years, highlighting the process of fast pyrolysis of biomass to obtain bio-oil. The continuous fast pyrolysis, the most investigated and improved are the fluidized bed and ablative, but is being studied and developed other types in order to obtain Bio-oil a better quality, higher productivity, lower energy consumption, increased stability and process reliability and lower production cost. The stability of the product bio-oil is fundamental to designing consumer devices such as burners, engines and turbines. This study was motivated to produce Bio-oil, through the conversion of plant biomass or the use of its industrial and agricultural waste, presenting an alternative proposal for thermochemical pyrolysis process, taking advantage of particle dynamics in the rotating bed that favors the right gas-solid contact and heat transfer and mass. The pyrolyser designed to operate in a continuous process, a feeder containing two stages, a divisive system of biomass integrated with a tab of coal fines and a system of condensing steam pyrolytic. The prototype has been tested with sawdust, using a complete experimental design on two levels to investigate the sensitivity of factors: the process temperature, gas flow drag and spin speed compared to the mass yield of bio-oil. The best result was obtained in the condition of 570 oC, 25 Hz and 200 cm3/min, temperature being the parameter of greatest significance. The mass balance of the elementary stages presented in the order of 20% and 37% liquid pyrolytic carbon. We determined the properties of liquid and solid products of pyrolysis as density, viscosity, pH, PCI, and the composition characterized by chemical analysis, revealing the composition and properties of a Bio-oil.
机译:对替代能源的需求推动了技术的发展,因此许多燃料和能量转化过程在被认为不可行甚至不可行之前,现在正在与燃料和所谓的传统过程竞争。因此,生物质扮演着重要角色,被认为是地球上最重要的可再生能源之一。生物质占所有可再生能源的29.2%。巴西在世界动物卫生组织中所占的生物质能份额为13.6%,远高于世界平均参与水平。近年来,已经研究了各种类型的热解过程,突出了生物质快速热解以获得生物油的过程。连续快速热解,流化床和烧蚀是研究最多和得到改进的方法,但是正在研究和开发其他类型的热解方法,以便获得质量更高,生产率更高,能耗更低,稳定性和工艺​​可靠性更高且更低的生物油。生产成本。产品生物油的稳定性是设计消费类设备(如燃烧器,发动机和涡轮机)的基础。这项研究的动机是通过转化植物生物质或利用其工业和农业废料生产生物油,提出了一种热化学热解工艺的替代方案,该方法利用了旋转床中的颗粒动力学,有利于正确的气体-固体接触,传热和质量。热解炉设计为可连续运行,进料器包含两个阶段,生物质分裂系统与煤细粉片集成,冷凝蒸汽热解系统。该原型已经过锯末测试,使用完整的实验设计在两个层面上研究了因素的敏感性:工艺温度,气流阻力和旋转速度与生物油的大量产量相比。在570 oC,25 Hz和200 cm3 / min的条件下获得了最佳结果,温度是最重要的参数。基本阶段的质量平衡以液态热解碳的顺序为20%和37%。我们确定了热解的液体和固体产物的性质,如密度,粘度,pH,PCI以及通过化学分析表征的组成,揭示了生物油的组成和性质。

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