设计并实现了用于瀑布和运河的“nHy-Fall”微型水力发电

P. Suwanapingkarl, M. Boonthienthong, K. Srivallop, S. Prakobkit
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引用次数: 0

摘要

水力发电被认为是最有效的可持续能源。这种类型的技术通常基于水的下降和流动,因此水的特性可以被认为是动能的势能。而且,该技术相对经济、低排放、可持续、灵活性高、能响应峰值需求。它能够快速响应需求,因为当水下降和/或流过涡轮机时,它可以立即发电。这意味着它可以促进电力的稳定性。目前,纳米技术和材料特性的不断发展,也影响了水轮机技术的建设场地大、投资高、投资回收期长。因此,有必要对水电站的尺寸进行分类,以便明确设计和安装的合适要求。据了解,目前国际上对水电规模的定义还没有统一的标准和法规。然而,它可以大致分为以下几类:分别为微型水电(5千瓦以下)、纳米水电(10千瓦以下)、微型水电(100千瓦以下)、微型水电(1000千瓦以下)、小型水电(6000千瓦以下)和水电上限(6000千瓦至30000千瓦)。本文设计并实现了用于瀑布和运河的微型水力发电装置,称为“nHy-Fall”装置。为了验证和确保其性能,原型装置在泰国北碧府的赛育国家公园进行了测试。为实现微型水轮机,进行了数学建模、计算机仿真(利用MATLAB/Simulink软件)、计算机设计(利用AutoCAD和/或SolidWorks软件)和样机实现。建议的“nHy- Fall”装置可以主要支撑在瀑布和运河上,也可以安装在河岸、河中、海湾、海岸线和沿海河口。所提出的发电机应易于安装和维护,同时发电机的材料结构应具有耐腐蚀性。为了保证发电机的安全,发电机也遵循了标准和法规。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Designs and Implements the ‘nHy-Fall’ Pico-Hydropower For Waterfall and Canal
The Hydropower is considered as the most efficient power generation of sustainable energy. This type of technology is commonly based on the falling and flowing of the water, and hence the characteristic of the water can be considered as a potential of kinetic energy. Moreover, this technology is relatively most economic, low emission, sustainable, high flexibility and response to the peak demand. It is capable of rapid response to the demand because it can immediately generate the power, when the water falls and/or flows through the turbines. This means that it can contribute the stability of electricity.Nowadays, the nano-technology and characteristic of materials is continually growth and developed, respectively, and hence it is also effected the technology of hydropower turbine such as large construction site, high investment, and then long term of payback period. Therefore, it is necessary to classify the sizing of the Hydropower in order to specify the suitable requirement of design and installation. It is known that there are no international standards and regulations consensus on the definition of sizing the Hydropower. However, it can be approximately classified into as follows; Pico-Hydropower (rated less than 5 kW), Nano-Hydropower (rated less than 10 kW), Micro-Hydro (rated less than 100 kW), Mini-Hydropower (rated less than 1,000 kW), Small-Hydropower (rated less than 6,000 kW) and the upper limit of Hydropower (rated from 6,000 kw up to 30,000 kW), respectively.The paper has been designed and implemented the Pico-Hydropower for waterfall and canal, which calls ‘nHy-Fall’ devices. The prototype devices were carried out at the Sai Yok National Park, Kanchanaburi, Thailand in order to validate and ensure its performance. To achieve the Pico- Hydropower turbine, the mathematic modelling, computer simulation (as MATLAB/Simulink software), computer design (as AutoCAD and/or SolidWorks software) and implementation the prototype was carried out. The proposed ‘nHy- Fall’ devices can mainly support at the waterfall and canal, while it can also install at the riverbank, in the middle of river, bays, shoreline and coastal estuaries. The proposed generator should be easy to install and maintenance, while the chosen material structure of generator has the corrosion resistance. The generator was also followed the standards and regulations in order to ensure its safety.
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