外文翻译-----储氢的风力涡轮机水塔
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1、外文翻译 Hydorgen storage in wind turbine towers International Journal of Hydrogen Energy 29 (2004) 12771288 Ryan Kottenstettea, Jason Cotrellb; aSummer intern from Santa Clara University, 1235 Monroe St, Santa Clara, CA 95050, USA National Wind Technology Centre, National Renewable Energy Laboratory,
2、1614 Cole Blvd, Golden, CO 80401, USA Received 18 November 2003; accepted 15 December 2003 Abstract: Modern utility-scale wind turbine towers are typically conical steel hydrogen in what we have termed a hydrogen tower. This paper examines potential technical barriers to this technology and identi4e
3、s a minimum cost design. We discovered that hydrogen towers have a crossover pressure at which the critical mode of failure crosses over from fatigue to bursting. The crossover pressure for many turbine towers is between 1.0 and 1:5 mPa (approximately 1015 atm) The hydrogen tower design resulting in
4、 the least expensive hydrogen storage uses all of the available volume for storage and is designed at its crossover an additional $83,000 beyond the cost of the conventional tower) and would store 940 kg of hydrogen at1:1 mPa of pressure. The resulting incremental storage cost of $88/kg is approxima
5、tely 30% of that for conventional pressure vessels. Published by Elsevier Ltd on behalf of the International Association for Hydrogen Energy. Keywords: Wind turbine; Tower; Hydrogen; Storage; Pressure vessel 1. Introduction Low-cost hydrogen storage is recognized as a cornerstone of a renewables-hyd
6、rogen economy. Modern utility-scale wind turbine towers are typically conical steel structures that, in addition to supporting the nacelle, could be used to store gaseous hydrogen. We have coined the phrase hydrogen tower to describe this technology. During hours, electrolyzers could use energy from
7、 the wind turbines or the grid to generate hydrogen and store it in turbine towers. There are many potential uses for this stored fuel. The stored hydrogen could later be used to generate electricity via a fuel cell during times of peak demand. This capacity for energy storage could signi4cantly mit
8、igate the drawbacks to the Auctuating nature of the wind and provide a cost ective means of meeting peak demand. Alternatively, the hydrogen could be used for fuel cell vehicles or transmitted to gaseous hydrogen pipelines. Storing hydrogen in a wind turbine tower appears to have been 4rst suggested
9、 by Lee Jay Fingersh at the National Renewable Energy Laboratory An extension of the hydrogen tower idea is to store hydrogen in shore wind turbine towers and posibly even foundations. shore foundations are of ten monopiles which could potentially provide large amounts of storage without ecting the
10、positioning ladder, and power electronics. A similar idea for generating and storing hydrogen in the base of a Aoating shore wind turbine was proposed by William Heronemus in the 1970s However, this study focuses on the economics and design of onshore hydrogen towers. The objectives of this paper ar
11、e as follows: (1) Identify the paramount considerations associated with using a wind turbine tower for hydrogen storage. (2) Propose and analyze a cost ective design for a hydrogen tower.03603199/$ 30.00 Published by Elsevier Ltd on behalf of the International Association for Hydrogen Energy. (3) Co
12、mpare the cost of storage in hydrogen towers to the cost of hydrogen dtorage storage in conwentional pressure vessels There are many competitive methods of storing hydrogen such as liquid hydrogen storage, underground geologic storage, and transmission pipeline storage. However, a comparison was mad
13、e only to one storage technology to limit the scope of this study. Conventional pressure vessel tech- nology was chosen because it is the most widely available of the technologies and the method most likely to be used for the moderate amounts of hydrogen storage considered in this study. This study
14、engages these objectives within the wider wind-hydrogen system,Various balance of station costs such as transportation, licensing, and piping are therefore outside the scope of this report. This paper outlines the assumptions made during this study, outlines primary considerations associated with a
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