Computational Design Scheme for Wind Turbine Drive-Train Based on Lagrange Multipliers

M. Saleh, A. Nada, A. El-Betar, A. El-assal
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引用次数: 7

Abstract

The design optimization of wind turbines and their subsystems will make them competitive as an ideal alternative for energy. This paper proposed a design procedure for one of these subsystems, which is the Wind Turbine Drive-Train (WTDT). The design of the WTDT is based on the load assumptions and considered as the most significant parameter for increasing the efficiency of energy generation. In industry, these loads are supplemented by expert assumptions and manipulated to design the transmission elements. In contrary, in this work, the multibody system approach is used to estimate the static as well as dynamic loads based on the Lagrange multipliers. Lagrange multipliers are numerical parameters associated with the holonomic and nonholonomic constraints assigned in the drive-train model. The proposed scheme includes computational manipulations of kinematic constraints, mapping the generalized forces into Cartesian respective, and enactment of velocity-based constrains. Based on the dynamic model and the obtained forces, the design process of a planetary stage of WTDT is implemented with trade-off’s optimization in terms of gearing parameters. A wind turbine of 1.4 megawatts is introduced as an evaluation study of the proposed procedure, in which the main advantage is the systematic nature of designing complex systems in motion.
基于拉格朗日乘法器的风电传动系计算设计方案
风力涡轮机及其子系统的优化设计将使其成为具有竞争力的理想替代能源。本文提出了其中一个子系统的设计过程,即风力发电机传动系统(WTDT)。WTDT的设计是基于负荷假设,并被认为是提高发电效率的最重要参数。在工业中,这些负载由专家假设和操纵来设计传动元件。相反,在这项工作中,多体系统方法被用于估计静态和基于拉格朗日乘子的动态载荷。拉格朗日乘子是与传动系模型中分配的完整约束和非完整约束相关联的数值参数。提出的方案包括运动学约束的计算操作,将广义力映射到笛卡尔坐标系,以及基于速度的约束的制定。基于动力学模型和得到的力,对WTDT行星级的设计过程进行了齿轮传动参数的权衡优化。介绍了一种1.4兆瓦的风力涡轮机,作为对所提出程序的评估研究,其中主要优点是设计运动中的复杂系统的系统性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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28 weeks
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