Simulation of Wind Powered Hydraulic Heating System

Daniel Roozbahani, Juha-Matti Herpiö, R. Åman, H. Handroos
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引用次数: 3

Abstract

The objective of this paper is to design and simulate a wind powered hydraulic heating system that can operate independently in remote places where the use of electricity is not possible. Components for the system were to be selected in such a way that the conditions for manufacture, use and economic viability are the as good as possible. Savonius rotor is chosen for wind turbine, due to its low cut in speed and robust design. Savonius rotor produces kinetic energy in wide wind speed range and it can withstand high wind gusts. Radial piston pump is chosen for the flow source of the hydraulic heater. Pump type is selected due to its characteristics in low rotation speeds and high efficiency. Volume flow from the pump is passed through the throttle orifice. Pressure drop over the orifice causes the hydraulic oil to heat up and, thus, creating thermal energy. Thermal energy in the oil is led to radiator where it conducts heat to the environment. The hydraulic heating system is simulated. For this purpose, a mathematical models of chosen components were created. In simulation wind data gathered by Finnish meteorological institute for 167 hours is used as input. The highest produced power is achieved by changing the orifice diameter so that the rotor tip speed ratio follows the power curve. This is not possible to achieve without using electricity. Thus, for the orifice diameter only one, the optimal value is defined. Results from the simulation were compared with investment calculations. Different parameters effecting the investment profitability were altered in sensitivity analyses in order to define the points of investment profitability. Investment is found to be profitable only with high average wind speeds.
风力液压加热系统仿真
本文的目的是设计和模拟一个风力液压加热系统,该系统可以在无法使用电力的偏远地区独立运行。系统组件的选择应使制造、使用和经济可行性条件尽可能好。萨沃纽斯转子是风力发电机选择,由于其低切割速度和坚固的设计。Savonius转子在大风速范围内产生动能,并能承受较大的阵风。液压加热器的流源选择径向柱塞泵。选择泵的类型是由于其转速低,效率高的特点。泵的流量通过节流孔。节流孔上的压降使液压油升温,从而产生热能。油中的热能被引导到散热器,在那里它将热量传递给环境。对液压加热系统进行了仿真。为此,建立了所选部件的数学模型。模拟使用芬兰气象研究所收集的167小时的风力数据作为输入。最高产生的功率是通过改变孔直径,使转子尖端速比跟随功率曲线实现的。如果不用电,这是不可能实现的。因此,对于只有一个孔的直径,定义了最优值。仿真结果与投资计算结果进行了比较。在敏感性分析中改变影响投资盈利能力的不同参数,以确定投资盈利能力的点。研究发现,只有在平均风速较高的情况下,投资才有利可图。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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