座舱增压
天然气
压缩天然气
储能
工艺工程
废物管理
能量(信号处理)
环境科学
石油工程
材料科学
工程类
机械工程
热力学
复合材料
物理
功率(物理)
量子力学
标识
DOI:10.1016/j.rineng.2024.102943
摘要
A novel mechanism is proposed to simultaneous recovery and storage of energy for use in the natural gas depressurization process. The main idea of this proposal is to use a compressor and a pump coupled with the turbo-expander to directly store the mechanical power produced by the expansion turbine in the energy storage system based on the pumped hydro combined with compressed gas. The compressor is used to create preset pressure in the vessel of the energy storage system, and the pump is used to inject water into the vessel. In this way, the density of energy storage in the system increases. In the discharge stage, electricity is produced by passing water through the turbo-generator during peak consumption hours or when energy prices are higher. The capability of the presented new method has been tested in a natural gas pressure reducing station with a nominal capacity of 50,000 Nm 3 /h, and the effect of different factors within the energy storage system on its performance, including the preset pressure and the volumetric ratio of water to gas in the pressurized tank, has been studied. By using the proposed plan, due to the elimination of unnecessary energy conversions the efficiency of recovery, storage and release of energy enhances. The results showed that by employing the proposed system, about 1.3 (GWh) of energy can be harvested annually; while this amount of energy is currently wasted. Also, the overall energy conversion efficiency of 48.64 %. • A novel method is proposed for energy recovery and direct storage for natural gas pressure reduction station. • Using innovative turbo-pump-compressor system energy conversion efficiency enhances. • About 1.3 (GWh) of energy can be harvested annually; while this amount of energy is currently wasted. • A framework proposed for optimal design of energy storage system. • The overall energy conversion efficiency enhanced up to 48.64.
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