风力机动力传动系统健康监测试验台的设计与分析

Lorenzo Balestra, A. Nejad, G. Naldi
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摘要

海上风力涡轮机的可靠性是评估维护成本、部件故障停机时间和运行寿命期间整体效率的关键因素。海上风力涡轮机的可及性有限,并且在恶劣的环境中运行,因此很难对电气和机械部件进行频繁检查。动力传动系统试验台(DTR)对于以下任务至关重要:验证新组件的设计以避免早期失效,在受控环境中长时间观察组件在负载下的行为,并制定维护计划,以最大限度地降低成本和干预频率。本文简要介绍了DTR技术的最新进展,并介绍了一种方法,该方法可用于为动力传动系统试验台创建有效的概念设计,同时也关注了可能的缩小规模。本文首先分析了动力传动系统在风力发电行业中应用的好处,并给出了在工业和学术界使用的真实试验台的例子。一旦掌握了主题,就可以继续描述获得概念设计所需的各个阶段,从布局的定义到初步的3D建模。这里设计的测试台,虽然灵感来自于工业中使用的全尺寸测力机,但被认为是学术用途的实验室工具,可以被学生用来研究风力涡轮机的故障检测方法和健康监测系统。其中还包括一个章节,专门介绍了基于传动系统机械行为的简单考虑,缩小试验台的可能技术。当在空间和预算有限的实验室中测试尺寸不断增加的涡轮部件时,缩小尺寸成为一个关键因素。创建一个比例版本的程序的定义将允许实验室建立较小尺寸的试验台,但与各种组件的损伤模型仍然与实际规模紧密相连。当使用有限的电源时,缩小尺寸也是必要的,无法重现真实规模涡轮机遇到的条件。最终目标是定义一个坚实的基础,以便在详细设计阶段进行进一步的开发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On Design and Analysis of a Drivetrain Test Rig for Wind Turbine Health Monitoring
The reliability of offshore wind turbines is a key factor when estimating maintanence costs, downtime due to component failure and overall efficiency during operational life. Offshore wind turbines have limited accessibility and operate in harsh environments and, as a result, it is difficult to perform frequent checks on electrical and mechanical component. Drivetrain test rigs (DTR) are crucial to the task of: validating the design of new components to avoid early life failure, observe the behaviour of components under load over long periods of time in a controlled environment and produce a maintanence plan that minimize costs and frequency of intervention. In this paper, after a brief introduction on the state of the art in DTR technology, is described a methodology that can be used to create an effective conceptual design for a drivetrain test rig, focusing also on the possible downscaling. The paper starts by analyzing the benefits of the drivetrain use in the wind power industry, bringing examples of real test rigs used in industrial and academical world. Once the topic is mastered it is possible to proceed with a description of the various phases needed to obtain the conceptual design, from the definition of layout to the preliminary 3D modeling. The test rig that is here designed, while inspired from full scale dynamometers used in the industry, is thought as a laboratory tool for academical use that can be used by students to investigate fault detection methods and health monitoring systems of wind turbines. It is also included a section dedicated to the possible techniques for downscaling the test rig, based on simple considerations of the drivetrain mechanical behaviour. Downscaling becomes a key factor when facing the need to test turbine components of ever increasing dimensions in laboratories with limited space and budget. The definition of a procedure to create a scaled version will allow laboratories to build test rigs of smaller dimension but with a damage model for the various components still closely linked to the one in real scale. Downscaling is also a necessity when working with limited power sources, not able to recreate the conditions that the real scale turbine encounters. The ultimate goal is to define a solid base to allow further development in the detailed design phase.
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