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Hydrodynamic analysis of water-jet thrusters for the spherical underwater robot (SUR III)

机译:球形水下机器人喷水推进器的流体动力学分析(SUR III)

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For the propulsion system of an underwater robot, the nozzle of the water-jet thruster plays an important role in converting energy to generate the reaction thrust. In order to achieve a higher reaction thrust, hydrodynamic analysis of the water-jet thruster is introduced in this paper. First, the prototypes of the third-generation Spherical Underwater Robot (SUR-III) and the water-jet thruster are given. Then the design principle of conical nozzle is described in detail. The shape of nozzle is changed from the traditional cylindrical one to conical one. The control angle is used to change the reaction thrust of the water flow in the outlet of nozzle. Before making the hydrodynamic analysis, we use Solidworks2011 to establish 3D models of conical nozzles with different control angles. Some unimportant parts causing limitations are ignored to simplify the analysis. Finally, ANASYS CFX is employed to make the hydrodynamic analysis. Comparing the simulation results with theoretical values, the velocity error is less than 6.64%. The simulation results show that the increase of control angle of conical nozzles can increase the reaction thrust of water-jet thruster. Meanwhile, the reaction thrust of conical nozzle with 20° control angle is more than two times as big as that of cylindrical nozzle.
机译:对于水下机器人的推进系统,喷水推进器的喷嘴在转换能量以产生反作用力方面起着重要作用。为了获得更高的反作用力,本文介绍了喷水推进器的流体动力学分析。首先,给出了第三代球形水下机器人(SUR-III)的原型和喷水推进器。然后详细介绍了锥形喷嘴的设计原理。喷嘴的形状从传统的圆柱形变成了圆锥形。控制角用于改变喷嘴出口中水流的反作用力。在进行水动力分析之前,我们使用Solidworks2011建立具有不同控制角度的圆锥形喷嘴的3D模型。一些引起限制的不重要的部分将被忽略,以简化分析。最后,采用ANASYS CFX进行水动力分析。将仿真结果与理论值进行比较,速度误差小于6.64%。仿真结果表明,锥形喷嘴控制角的增大可以增大喷水推进器的反作用力。同时,控制角度为20°的圆锥形喷嘴的反作用力比圆柱形喷嘴的反作用力大两倍。

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