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How airplanes fly at power-off and full-power on rectilinear trajectories

机译:飞机如何在断电和直线轨迹全功率飞行

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Automatic trajectory planning is an important task that will have to be performed by truly autonomous vehicles. The main method proposed, for unmanned airplanes to do this, consists in concatenating elementary segments of trajectories such as rectilinear, circular and helical segments. It is argued here that because these cannot be expected to all be flyable at a same constant speed, it is necessary to consider segments on which the airplane accelerates or decelerates. In order to preserve the planning advantages that result from having the speed constant, it is proposed to do all speed changes at maximum deceleration or acceleration, so that they are as brief as possible. The constraints on the load factor, the lift and the power required for the motion are derived. The equation of motion for such accelerated motions is solved numerically. New results are obtained concerning the value of the angle and the speed for which the longest distance and the longest duration glides happen, and men for which the steepest, the fastest and the most fuel economical climbs happen The values obtained differ from those found in most airplane dynamics textbooks. Example of tables are produced that show how general speed changes can be effected efficiently; showing the time required for the changes, the horizontal distance traveled and the amount of fuel required. The results obtained apply to all internal combustion engine-propeller driven airplanes.
机译:自动轨迹规划是一项重要的任务,必须由真正的自动驾驶汽车执行。对于无人飞机而言,提出的主要方法是将轨迹的基本段(例如直线段,圆形段和螺旋段)串联起来。这里争论的是,由于不能期望它们都能够以相同的恒定速度飞行,因此有必要考虑飞机加速或减速的部分。为了保留由于速度恒定而产生的规划优势,建议以最大减速度或加速度进行所有速度变化,以使其尽可能简短。得出了对负载系数,升力和运动所需动力的约束。这种加速运动的运动方程在数值上得到求解。获得了有关距离和最长持续时间滑行的角度和速度值以及发生最陡,最快和最省油的爬升的人的新结果。飞机动力学教科书。产生的表格示例显示了如何有效地实现总体速度变化;显示更改所需的时间,行进的水平距离和所需的燃油量。获得的结果适用于所有内燃机-螺旋桨驱动的飞机。

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