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MULTIBODY-SYSTEM-SIMULATION OF COMPLETE DRIVE TRAINS OF MULTI-MEGAWATT-WIND-TURBINES

机译:多体 - 系统 - 仿真多兆瓦风力涡轮机的完整驱动火车

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For the simulation of service loads and of their effect on the whole turbine the wind turbine manufacturers use program systems whose particular strengths lie in the wind load simulation at the rotor, in the rotor dynamics as well as in the control-technological operation of the whole turbine. The complex dynamic behavior of the drive train, consisting of the rotor, the rotor shaft, the main gearbox, the brake, the coupling and the generator, is represented as a two-mass oscillator. This simplification, which certainly is necessary within the framework of the wind load simulation programs, is by no means sufficient for the exact description of the dynamics of the more and more complex drive trains with capacities up to 5 MW. At first, the extension to a multimass torsional vibration model seems to be useful for the exact determination of the torsional vibrations in the drive train. However, in the turbines of all manufacturers there have been found forms of damage on drive train components (high axial loads in bearings, high coupling loads, radial loads on generator bearings) that cannot be explained even on the basis of a torsional vibration analysis. Moreover, in measurements on drive trains natural frequencies in the signals occurred that can no longer be explained by the torsional vibration behavior alone. Consequently, a real multibody simulation becomes necessary, for which also radial and axial vibrations can be taken into account, in addition to torsion, since these influence the torsional vibration behavior considerably. These dependences become already clear in an analysis of natural frequencies. This is illustrated by the example of a 700-kW turbine as well as by a planetary gearing for a 3-MW turbine. Especially in the dimensioning of the off-shore turbines with several MW output power, which are being planned, the use of multibody simulation will be advantageous, since the testing of turbine prototypes of this order of magnitude under the corresponding operating conditions are surely more cost-intensive and risky than the virtual testing with well validated simulation models.
机译:对于服务的负载的和它们对整个涡轮机的效果的模拟的风力涡轮机制造商使用程序系统,其特别的优点在于,在转子上的风力载荷模拟中,在转子动力学以及在整个的控制技术操作涡轮。传动系的复杂动态行为,其由所述转子,所述转子轴,主齿轮箱,制动器,耦合和发电机的,被表示为一个双质量振荡器。这种简化,这当然是风负载仿真程序的框架内必要,绝不是足以使越来越复杂的传动系的动力与能力的确切描述最多5兆瓦。首先,延伸到multimass扭转振动模型似乎是在传动系中的扭转振动的精确测定是有用的。损害对传动系部件然而,在所有制造商的涡轮机存在已发现的形式(在轴承的高轴向负荷,高耦合负载,发电机轴承的径向载荷),其甚至不能扭转振动分析的基础上进行说明。此外,在上驱动系的测量信号中的固有频率发生的不再能由单独的扭转振动的行为进行说明。因此,真正的多体仿真成为必要,为此,也径向和轴向的振动可以被考虑,除了扭转,由于这些影响扭转振动行为相当。这些依赖关系成为固有频率的分析已经很明显了。这是通过一个700千瓦涡轮机的示例,以及通过用于3 MW涡轮机的行星齿轮传动装置示出。特别是在近海涡轮机与几兆瓦的输出功率,这正在规划的尺寸,使用多体仿真的将是有利的,因为这个数量级的涡轮原型的相应操作条件下的测试是肯定更具成本密集型和比很好的验证仿真模型的虚拟测试风险。

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