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Optimal Operating Condition of Fluidized Bed Propellant Incinerator Considering Fluidization Effect and Reaction of the Particles

机译:清融效应和颗粒反应的流化床推进剂焚烧炉的最佳运行条件

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Propellant is one of the most important material of the missiles systems. In general, the propellant has an usable period in order to assure performance and expired propellant should be discarded safely. However, this incineration process is extremely dangerous because the propellant is consisted by highly reactive materials such as nitrocellulose (NC) and nitroglycerine (NG). In these days, fluidized bed is considered as an advanced reactor for the incinerating process because of the particulate propellant is incinerated consistently and efficiently. Fluidizing and mixing characteristics are quite significant in design an effective and safe fluidized bed propellant incinerator. In this study, the computational fluid dynamics (CFD) model is established to evaluate fluidizing and bubbling behaviour in the fluidized bed propellant incineration. Eulerian-Lagrangian coupled method is used to rigorously simulate fluidization behaviour of the propellant particles in the bed. Various process conditions such as mass flow of feed and air injection rate are considered for the model to analyse fluidization effect. The fluidized bed is designed cylinder shape and its diameter is 2m and height is 9m for the target NG/NC disposal rate 20,000 t/y and diameter of propellant is assumed 3.0mm. TNT is incinerated for applying other propellants by using TNT equivalent method. In addition, incineration reaction of propellant is contemplated. Therefore the 40% of fluidized bed is filled with sand to prevent damage according to overpressure and high temperature by incineration of propellant. The simulations are performed with changing air injection velocity to find optimal conditions of fluidization. Fluidization begins to be observed at 1.0 m/s of air injection rate and meaningful fluidization is observed at 1.5 m/s of air injection rate. When air injection rate is 2.0 m/s, fluidization is better than others and maximum temperature is acceptable. As a result, 2.0 m/s of air injection rate is optimal condition. This research will be of help to demilitarize old propellant safely and economically and can be useful data to build incineration facilities.
机译:推进剂是导弹系统中最重要的材料之一。通常,推进剂具有可用的时间,以确保性能和过期的推进剂应该安全丢弃。然而,这种焚烧过程非常危险,因为推进剂由高反应性材料如硝酸纤维素(NC)和硝酸甘油(NG)组成。在这些天中,由于颗粒状推进剂始终和有效地焚烧,流化床被认为是焚烧过程的先进反应器。在设计有效和安全的流化床推进剂焚烧炉中,流化和混合特性非常显着。在该研究中,建立计算流体动力学(CFD)模型以评估流化床推进剂焚烧中的流化和起泡行为。 Eulerian-Lagrangian耦合方法用于严格模拟床中推进剂颗粒的流化行为。各种工艺条件,例如饲料和空气喷射率的质量流量被认为是用于分析流化效果的模型。流化床设计圆柱形状,其直径为2M,高度为9m,靶NG / NC处理速率20,000 T / Y和推进剂的直径被假定为3.0mm。通过使用TNT等效方法焚烧TNT以施加其他推进剂。此外,考虑推进剂的焚烧反应。因此,40%的流化床填充有砂,以防止通过焚烧推进剂根据过压和高温损坏。通过改变空气喷射速度进行模拟,以找到流化的最佳条件。在空气喷射速率的1.0m / s的1.0m / s的1.0m / s的情况下观察到流化的流动化在1.5 m / s的空气喷射率下观察到。当空气喷射率为2.0米/秒时,流化优于其他,最高温度是可接受的。结果,2.0米/秒的空气喷射率是最佳状态。这项研究将有助于防止旧推进剂,在经济上进行无力,可以是建立焚烧设施的有用数据。

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