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西安交通大学能源与动力工程学院,西安,710049
Online First:10 January 2016,
Published:2016
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A Novel Combined Cooling Heating and Power System with Coupled Compressed Air Energy Storage and Combustion Engine[J]. 2016, 50(1): 22-27+40.
A Novel Combined Cooling Heating and Power System with Coupled Compressed Air Energy Storage and Combustion Engine[J]. 2016, 50(1): 22-27+40. DOI: 10.7652/xjtuxb201601004.
为探索可再生能源的高效利用方法
基于热力学定律和能量按品质利用的原则
提出了一种以压缩空气储能技术为基础的与内燃机技术耦合的冷热电联产分布式能量系统
建立了该系统的热力学模型并自编程序对系统进行了热力学分析
重点研究了系统中的压气机、换热器、透平膨胀机、内燃机等主要设备性能以及关键节点参数
如透平膨胀机入口压力和温度以及压气机压比对系统性能的影响规律。研究结果表明:所提系统具有较高的能量效率和效率
其中透平膨胀机、内燃机及换热器是系统关键设备; 增加系统设备的效率可以提高系统的能量效率、折合发电效率及效率
增加内燃机发电效率获得的效果更加明显。该结果可为系统的工程应用提供理论依据。
Based on the laws of thermodynamics and the principle of cascade energy utilization
a novel combined cooling heating and power(CCHP)system consisting of compressed air energy storage(CAES)technology and combustion engine is proposed to explore the strategy for efficient renewable energy application. The thermodynamic model of the system is established and the thermodynamic properties of the system are analyzed with a newly developed code. The thermodynamic analysis focuses on the performance of major equipment
including compressor
heat exchangers
turbine expander
and combustion engine. And the effects of key parameters such as the inlet pressure and temperature of turbine expander and the pressure ratio of compressor on the system performance are emphatically discussed. The simulation indicates that this system has higher value of both energy efficiency and exergy efficiency where system turbine expander
combustion engine and heat exchangers serve as the crucial roles. The energy efficiency
exergy efficiency and electricity conversion efficiency increase with the rising efficiency of system equipment
especially with the rising combustion engine efficiency.
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