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Wind Generator & Biomass No-draft Gasification Hybrid.

机译:风力发电机和生物质无气化混合气。

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摘要

The premise of this research is that underutilized but vast intermittent renewable energy resources, such as wind, can become more market competitive by coupling with storable renewable energy sources, like biomass; thereby creating a firm capacity resource. Specifically, the Midwest state of South Dakota has immense wind energy potential that is not used because of economic and logistic barriers of electrical transmission or storage. Coupling the state's intermittent wind resource with another of the state's energy resources, cellulosic non-food biomass, by using a wind generator and no-draft biomass gasification hybrid system will result in a energy source that is both firm and storable.;The average energy content of common biomass feedstock was determined, 14.8 MJ/kg (7.153 Btu/lb), along with the assumed typical biomass conversion efficiency of the no-draft gasifier, 65%, so that an average electrical energy round trip efficiency (RTE) of 214% can be expected (i.e. One unit of wind electrical energy can produce 2.14 kWh of electrical energy stored as syngas.) from a wind generator and no-draft biomass gasification system.;Wind characteristics are site specific so this analysis utilizes a synthetic wind resource to represent a statistically sound gross representation of South Dakota's wind regime based on data from the Wind Resource Assessment Network (WRAN) locations. A synthetic wind turbine generated from common wind turbine power curves and scaled to 1-MW rated capacity was utilized for this analysis in order to remove equipment bias from the results. A standard 8,760-hour BIN Analysis model was constructed within HOMER, powerful simulation software developed by the National Renewable Energy Laboratory (NREL) to model the performance of renewable power systems.;It was found that the optimum configuration on a per-megawatt-transmitted basis required a wind generator (wind farm) rated capacity of 3-MW with an anticipated annual biomass feedstock of 26,132 GJ or an anticipated 1,766 tonnes of biomass. The levelized cost of electricity (COE) ranged from ;The resulting electrical energy available to the grid has an approximate wholesale value of ;Additional benefits of the system are in the flexibility of transporting wind and biomass energy produced as well as the end use of the energy. Instead of high-voltage electrical transmission a gas line can now be used to transport energy produced by the wind. Syngas can also be further processed into higher energy density liquefied syngas. Liquid fuels can then be transported via commercial freight on existing road infrastructure.
机译:这项研究的前提是,通过与可储存的可再生能源(例如生物质)相结合,风能等利用率低下但数量众多的间歇性可再生能源可以变得更具市场竞争力。从而创造了牢固的能力资源。具体而言,南达科他州的中西部州具有巨大的风能潜力,由于电力传输或存储的经济和后勤障碍,该潜力未被利用。通过使用风力发电机和无草案生物质气化混合系统,将州的间歇性风能与该州的另一种能源-纤维素非食品生物质耦合,将产生既牢固又可存储的能源;平均能源确定了常见生物质原料的含量14.8 MJ / kg(7.153 Btu / lb),以及假定的无气化气化炉典型生物质转化效率65%,因此平均电能往返效率(RTE)为可以预期从风力发电机和无草案生物质气化系统获得214%的风能(即,一单位风能可产生2.14 kWh的电能作为合成气存储。);风的特性是针对特定地点的,因此该分析利用合成风资源来自风资源评估网络(WRAN)位置的数据,代表南达科他州风域的统计上合理的总体表示。为了从结果中消除设备偏差,使用了根据常见风力涡轮机功率曲线生成并缩放至1兆瓦额定容量的合成风力涡轮机。在国家可再生能源实验室(NREL)开发的功能强大的仿真软件HOMER中构建了标准的8,760小时BIN分析模型,以对可再生能源系统的性能进行建模;发现每兆瓦传输的最优配置基于此,风力发电场(风电场)的额定容量为3兆瓦,预计每年的生物质原料为26,132 GJ,或预计的1,766吨生物质。电力的平均成本(COE)介于;到电网的可用电能的批发价值约为;该系统的其他好处是运输风能和产生的生物质能的灵活性以及最终使用能源。代替高压电气传输,现在可以使用燃气管道来传输风产生的能量。合成气也可以进一步加工成能量密度更高的液化合成气。然后可以通过商业货运在现有的道路基础设施上运输液体燃料。

著录项

  • 作者

    Hein, Matthew R.;

  • 作者单位

    South Dakota State University.;

  • 授予单位 South Dakota State University.;
  • 学科 Alternative Energy.;Engineering Mechanical.;Energy.
  • 学位 M.S.
  • 年度 2010
  • 页码 106 p.
  • 总页数 106
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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