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WIND ENERGY AND COMPRESSED AIR ENERGY STORAGE POTENTIAL FOR NEW YORK CITY

机译:纽约市的风能和压缩空气能存储潜力

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The energ potential from wind is significant in many locations he U.S.,inelnding in some areas of New York State. The i()mittent ()ty of wind - specifically, higher wind p()ial at nig()nd in the winter in New York - would requne extensive aiorage to make use of that energy during times o()peak electricity demand - during the day and in the summer Nthough the total energy available from wind may be sufficient and available at a low cost, the cost of implementing traditional ()orage techniques (e.g. batteries) would be expensive and require large amounts of space to address the offset supply and demand profiles. As such, base electricity loads are likely to continue to be served by a combination of less expensive energy conversion technologies, particularly given the current low cost of wholesale natural gas for gas-fueled power plants. Compressed air energy storage (CAES) has been evaluated - and implemented or proposed at a small number of facilities - as a potential energy storage technology that could be used to reduce the amount natural gas required to operate compressors at natural gas-fueled power plants serving base electricity demands. The result of this strategy is, effectively, an increase in thermal efficiency of the power plant.This paper presents an evaluation of wind energy available at a site in New York State, its potential to meet the electricity demand in New York City, the expected capital and recurring costs of the overall system, and a comparison to electricity provided by natural gas, a likely alternative large-scale fuel source. Annual wind data for the site and annual New York City electricity usage were analyzed. Available wind energy was first assumed to serve any electricity demand above the New York City base load. Additional available wind energy operates compressors, storing compressed air in underground caverns. The cavern sizes required and associated capital costs was calculated. The expected reduction in natural gas requirements were calculated for gas-fuelled power plants designed to accept compressed air from the caverns, with additional electricity demand met by gas turbine power plants. The recurrent cost reductions associated with reduced natural gas volumes were calculated based on a range of natural gas prices to evaluate the feasibility of the system described above under different market conditions. The potential usage of CAES systems for peak electricity demands was also evaluated.
机译:在美国的许多地方,包括纽约州的某些地区,风能的潜力都是巨大的。无限的风-特别是纽约冬季冬天的黑风(p)在较高的风中-将需要大量的电力来在电力需求高峰期间利用该能量-在白天和夏季,尽管风能提供的总能量可能足够且成本低廉,但实施传统(饲草)技术(例如电池)的成本将很高,并且需要大量空间来解决补偿问题。供需概况。这样,较便宜的能源转换技术将继续为基础电力负荷提供服务,特别是考虑到目前用于天然气发电厂的批发天然气价格较低。压缩空气能量存储(CAES)已作为一种潜在的能量存储技术进行了评估-并已在少数设施中实施或提出,可用于减少在天然气发电厂中运行压缩机所需的天然气量基本用电需求。该策略的结果是有效地提高了发电厂的热效率。本文提出了对纽约州某场所可用风能的评估,该潜力可满足纽约市的电力需求,这是预期的。整个系统的资本和经常性成本,以及与天然气(可能是替代性大型燃料来源)提供的电力的比较。分析了该站点的年度风能数据和纽约市的年度用电量。首先假定可用风能满足纽约市基本负荷以上的任何电力需求。可用的其他风能驱动压缩机,将压缩空气存储在地下洞穴中。计算所需的洞穴大小和相关的资本成本。计算出的天然气需求预期减少量是针对设计为从山洞中接收压缩空气的燃气发电厂,而燃气轮机发电厂可以满足额外的电力需求。根据一系列天然气价格计算与减少的天然气量相关的经常性费用减少,以评估上述系统在不同市场条件下的可行性。还评估了CAES系统满足峰值用电需求的潜在用途。

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