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A MATHEMATICAL MODEL WITH PRELIMINARY EXPERIMENTS OF A GYROSCOPIC OCEAN WAVE ENERGY CONVERTER

机译:陀螺海洋波能量转换器初步实验的数学模型

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Global attempts to increase generation of clean and reproducible natural energy have greatly contributed to the progress of solar, wind, biomass, and geothermal energy generation. To meet the goal set by the Renewable Portfolio Standards (RPS) in the United States, it is advisable for several of the coastal states to tap into the least explored resource: ocean-wave energy. There are many advantages to ocean-wave energy generation. First, the energy per unit area is 20 to 30 times larger compared with solar and five to ten times larger when compared to wind energy. Second, waves are more easily predicted than wind. Currently, there are several challenges with capturing ocean energy: With respect to the environment, noise pollution and effects on marine life need to be taken into consideration; with respect to design, ocean-wave power generators need to withstand large waves due to hurricanes and be designed to lessen visual pollution. There are various methods and devices used to capture ocean wave energy. Point absorbers, such as PowerBuoy, can harness vertical or heaving motion into electricity while attenuators like Pelamis use the induced movement of its joints from the incoming waves. Unfortunately, many have few parameters that can be varied to optimize power generation and or suffer from the various challenges mentioned above. The gyroscopic ocean wave energy converter harnesses the rocking or pitching motion induced by the ocean waves and converts it into rotary motion that is then fed to a generator. Furthermore, it is a fully enclosed floating device that has several parameters that can be varied to optimize power output. Previous work has demonstrated the viability of such a device, but the theoretical modeling of these converters is still in its infancy compared to that of other ocean wave energy converters. The objective of the research presented is to fully understand the mechanisms of power generation in the gyroscopic ocean wave energy converter. Using the moving frame method, a mathematical model of the device is developed. The nonlinear equations of motion are derived through the use of this novel method and then solved numerically. The results are then used to optimize the system and identify key parameters and their effect on the output power generated. Additionally, the resulting equations serve as a tool for identifying an appropriate control strategy for the system. Finally, a scale model of a gyroscopic ocean wave energy converter is developed to validate the equations of motion that have been derived.
机译:全球增加清洁和可再生自然能源发电的尝试极大地推动了太阳能,风能,生物质能和地热能发电的发展。为了达到美国可再生能源投资组合标准(RPS)设定的目标,建议几个沿海州开发勘探最少的资源:海浪能源。海浪能量的产生有许多优点。首先,单位面积的能量是太阳能的20至30倍,而风能则是5至10倍。其次,海浪比风更容易预测。当前,捕获海洋能面临若干挑战:就环境而言,需要考虑噪声污染及其对海洋生物的影响;在设计方面,海浪发电机需要承受飓风造成的大浪,并且必须设计成减少视觉污染。有多种用于捕获海浪能量的方法和设备。诸如PowerBuoy之类的点吸收器可以利用垂直运动或起伏运动转化为电能,而像Pelamis这样的衰减器则利用入射波引起的关节运动。不幸的是,许多参数很少可以改变以优化发电,或遭受上述各种挑战。陀螺仪的海浪能量转换器利用海浪引起的摇摆或俯仰运动,并将其转换为旋转运动,然后将其馈送到发电机。此外,它是一个完全封闭的浮动设备,具有多个参数,可以通过更改这些参数来优化功率输出。先前的工作已经证明了这种设备的可行性,但是与其他海浪能量转换器相比,这些转换器的理论建模仍处于起步阶段。提出研究的目的是充分了解陀螺海浪能量转换器中的发电机理。使用移动框架方法,开发了设备的数学模型。通过使用这种新颖的方法,可以得出非线性的运动方程,然后进行数值求解。然后将结果用于优化系统,并确定关键参数及其对产生的输出功率的影响。此外,所得方程式还可以用作确定系统适当控制策略的工具。最后,开发了陀螺海浪能量转换器的比例模型,以验证已导出的运动方程。

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