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Fuel-Efficient Rudder and Propeller Control Allocation for Marine Craft: Experiments With a Model Ship

机译:船舶的节油舵和螺旋桨控制分配:模型船实验

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We derived a control allocation algorithm for low-speed marine craft using propellers and rudders. Active use of rudders has advantages in a low-speed operation by decreasing the need for propeller power and fuel. However, at low speed, a rudder is effective only for positive thrust. This complicates the thrust allocation problem which can no longer be solved by convex quadratic programming. In fact, the existence of local minima introduces discontinuities in the commanded thruster signals even if the desired control force is continuous. Discontinuous signals cause excessive wear on the thruster system and must be avoided. This paper suggests an analytic, 2-norm optimal method that can ensure continuity of the solutions. Being analytic, however, its limitation is the capability of handling only configurations where one single thrust device is subject to sector constraints at a time. Experiments with a model ship illustrate the potential for fuel saving. For this particular vessel, the energy consumption was halved. An output feedback tracking control law with integral action was simultaneously derived and analyzed. Semiglobal ship controllers like this one rely on the yaw rate being bounded, and an admittedly conservative method for determining this upper bound was proposed.
机译:我们推导了使用螺旋桨和舵的低速船舶的控制分配算法。通过减少对螺旋桨动力和燃料的需求,积极使用舵在低速运行中具有优势。但是,在低速时,方向舵仅对正向推力有效。这使推力分配问题复杂化,而该问题已不再可以通过凸二次规划来解决。实际上,即使期望的控制力是连续的,局部极小值的存在也会在命令的推力器信号中引入不连续性。信号不连续会导致推进器系统过度磨损,必须避免。本文提出了一种解析2-范数最优方法,可以确保解的连续性。但是,从分析的角度来看,它的局限性是只能处理单个推力装置一次受到扇区约束的配置。用模型船进行的实验说明了节省燃料的潜力。对于这种特定的船舶,能耗降低了一半。同时推导并分析了具有积分作用的输出反馈跟踪控制律。像这样的半球形船舶控制器依靠偏航角速度的限制,提出了一种公认的保守方法来确定该上限。

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