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ADVANCED COMPOSITE MATERIALS FOR TIDAL TURBINE BLADES

机译:先进的涡轮叶片复合材料

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The energy potential of harnessing the kinetic energy of the world's ocean and tidal currents is part of the US's renewable energy plan. Technologies that improve the performance and reliability of marine current energy systems are needed. Marine current energy systems convert kinetic energy of moving tides and currents into electrical energy via underwater turbines. These turbine blades are designed to withstand the challenges of the marine environment including high hydrodynamic forces, corrosion due to salt water, and erosion due to cavitation, and impact from suspended particle. Advanced composites are attractive for constructing tidal turbine blades. However performance improvements are needed regarding impact-damage and cavitation-erosion resistance. If not properly addressed, this could dramatically reduce the size, efficiency, reliability and life span of tidal turbines thereby reducing the viability of marine current energy systems. Recent work focused on composite ship propellers have shown substantially improved cavitation-erosion and impact-damage resistance in comparison to industry-standard materials while also possessing necessary mechanical properties and processing characteristics. Adaptation of these cavitation resistant composite materials can significantly improve the performance and economic feasibility of ocean tidal systems.
机译:利用世界海洋和潮流的动能潜力是美国可再生能源计划的一部分。需要改善海流能源系统的性能和可靠性的技术。船用电流能系统通过水下涡轮机将潮汐和海流的动能转换为电能。这些涡轮机叶片设计用于承受海洋环境的挑战,包括高流体动力,盐水腐蚀,空化腐蚀以及悬浮颗粒的冲击。先进的复合材料对于构造潮汐涡轮机叶片具有吸引力。但是,在冲击破坏和抗气蚀侵蚀方面需要改进性能。如果解决不当,这可能会极大地减小潮汐涡轮机的尺寸,效率,可靠性和使用寿命,从而降低海流能源系统的生存能力。最近针对复合材料船用螺旋桨的工作表明,与行业标准材料相比,其抗气蚀和冲击破坏的性能大大提高,同时还具有必要的机械性能和加工特性。适应这些抗气蚀性的复合材料可以显着提高海洋潮汐系统的性能和经济可行性。

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