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Progress and trends in nondestructive testing and evaluation for wind turbine composite blade

机译:风机复合材料叶片无损检测评估的进展与趋势

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Wind energy is one of the fastest growing renewable energy resources. It is distinctly important to increase reliability and availability of wind turbines and further to reduce the wind energy cost. Blades are considered to be one of the most critical components in wind turbine system because they convert Kinetic energy of wind into useable power. Blades are fabricated by carbon fiber reinforced polymer (CFRP) or glass fiber reinforced polymer (GFRP). Flaws and damages are inevitable during either fabrication or lifetime of a composite blade. Thus, non-destructive testing (NDT) and structural health monitoring (SHM) for wind turbine blade (WTB) are required to prevent failures and increase reliability in both manufacturing quality control and in-service inspection. In this work, a fully, in-depth and comprehensive review of NDT techniques for WTB inspection was reported based on an orderly and concise literature survey. Firstly, typical flaw and damage occurring in manufacturing progress and in service of WTB were introduced. Next, the developments of visual, sonic and ultrasonic, optical, electromagnetic, thermal and radiographic NDT for composite WTB inspection were reviewed. Thereafter, strengths and limitations of NDT techniques were concluded through comparison studies. In the end, some research trends in WTB NDT have been predicted, for example in combination with SHM. This work will provide a guide for NDT and SHM of WTB, which plays an important role in wind turbine safety control and wind energy cost savings. In addition, this work can benefit the NDT development in the field of renewable energy, such as solar energy, and energy conservation field, such as building diagnosis. (C) 2016 Elsevier Ltd. All rights reserved.
机译:风能是增长最快的可再生能源之一。提高风机的可靠性和可用性并进一步降低风能成本非常重要。叶片被认为是风力涡轮机系统中最关键的组件之一,因为它们将风的动能转化为可用的功率。叶片由碳纤维增强聚合物(CFRP)或玻璃纤维增​​强聚合物(GFRP)制成。在复合叶片的制造或使用寿命期间不可避免地会产生瑕疵和损坏。因此,需要对风力涡轮机叶片(WTB)进行无损检测(NDT)和结构健康监测(SHM),以防止出现故障并提高制造质量控制和使用中检查的可靠性。在这项工作中,根据有序,简明的文献调查,对用于WTB检查的NDT技术进行了全面,深入和全面的审查。首先,介绍了WTB在制造过程和服务过程中发生的典型缺陷和损坏。接下来,回顾了用于复合WTB检查的视觉,声音和超声,光学,电磁,热学和放射线无损检测的发展。此后,通过比较研究得出了无损检测技术的优势和局限性。最后,已经预测了WTB NDT的一些研究趋势,例如与SHM结合。这项工作将为WTB的NDT和SHM提供指导,它们在风机安全控制和节省风能成本方面起着重要作用。另外,这项工作可以有益于在诸如太阳能的可再生能源领域以及诸如建筑物诊断之类的节能领域中的无损检测发展。 (C)2016 Elsevier Ltd.保留所有权利。

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