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Reaction Control System using hybrid micro-thrusters for guided sounding rocket

机译:混合动力微型推力器用于制导探空火箭反应控制系统

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The paper intend to develop a calculus model for an innovative Reaction Control System (RCS) using hybrid rocket engine technology. Our RCS uses several hybrid micro-thrusters with their thrust modulated by a separate control system. For RCS, each of the thrusters will be able to burn a few minutes and its thrust will be modulated within certain limits by controlling the oxidizer flow. In order to reduce size and weight of the RCS we will use a single oxidizer tank which will have as output a flow distributor. The basic idea is not to stop any of the engines during system's operation but to minimize their thrust reducing the oxidizer flow. This approach is avoiding the inconvenience of repeated stopping and starting of the engine, which can create reliability problems to the entire RCS. By creating thrust imbalance between various hybrid micro thrusters, one can create torques with which the attitude or the trajectory of the vehicle can be adjusted. In terms of calculation model developed, it starts from our theoretical and experimental studies, which aimed to build a computational model for hybrid rocket engine highlighting the scalability, stability and its controllability. These studies were presented in RAST 2011 and are based on our own experiments performed in Electromecanica Ploiesti. Based on this concept we achieve a calculation of the performances of the RCS and an evaluation in their size. Conclusions and any discussion will be focused on technological possibilities for achieving the system and possible areas of application for the RCS.
机译:本文打算使用混合火箭发动机技术为创新的反应控制系统(RCS)开发演算模型。我们的RCS使用多个混合式微型推力器,其推力由单独的控制系统调节。对于RCS,每个推进器将能够燃烧几分钟,并且其推力将通过控制氧化剂流量在一定范围内进行调节。为了减小RCS的尺寸和重量,我们将使用单个氧化剂罐,该氧化剂罐将具有流量分配器作为输出。基本思想不是在系统运行期间停止任何发动机,而是将其推力降至最低,从而减少氧化剂流量。这种方法避免了发动机反复停止和启动的不便,这会给整个RCS带来可靠性问题。通过在各种混合动力微型推力器之间产生推力不平衡,可以产生扭矩,通过该扭矩可以调节车辆的姿态或轨迹。在开发的计算模型方面,它是从我们的理论和实验研究开始的,其目的是为混合动力火箭发动机建立一个计算模型,突出其可扩展性,稳定性及其可控性。这些研究在RAST 2011中进行,并基于我们自己在Electromecanica Ploiesti中进行的实验。基于此概念,我们实现了RCS性能的计算和大小评估。结论和讨论将集中在实现该系统的技术可能性和RCS的可能应用领域上。

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