中国科技论文
中國科技論文
중국과기논문
Sciencepaper Online
2015年
11期
1323-1328
,共6页
太阳能热机%布雷顿循环%损失%效率
太暘能熱機%佈雷頓循環%損失%效率
태양능열궤%포뢰돈순배%손실%효솔
solar-driven heat engine%Brayton cycle%exergy loss%exergy effciency
运用热力学第二定律,分析了恒温条件下,不可逆中冷回热再热太阳能布雷顿热机系统的损失和效率。结果表明:系统的效率随聚光比、高/低温侧换热器有效度的提高而增加;相同工作温度下,提高低温侧换热器有效度对系统效率的提高收益更大。在给定低压压缩机压比和高压透平膨胀比时,随着回热器有效度的增大,系统最大效率增加,最佳总压比减小;随着高/低温侧换热器有效度的增大,系统最大效率增加,最佳总压比增大。在给定总压比时,随着回热器、高低温侧换热器有效度的增加,系统最大效率增加,最佳低压压缩机压比和最佳高压透平膨胀比增大。这为系统的优化设计与节能运行提供了理论指导。
運用熱力學第二定律,分析瞭恆溫條件下,不可逆中冷迴熱再熱太暘能佈雷頓熱機繫統的損失和效率。結果錶明:繫統的效率隨聚光比、高/低溫側換熱器有效度的提高而增加;相同工作溫度下,提高低溫側換熱器有效度對繫統效率的提高收益更大。在給定低壓壓縮機壓比和高壓透平膨脹比時,隨著迴熱器有效度的增大,繫統最大效率增加,最佳總壓比減小;隨著高/低溫側換熱器有效度的增大,繫統最大效率增加,最佳總壓比增大。在給定總壓比時,隨著迴熱器、高低溫側換熱器有效度的增加,繫統最大效率增加,最佳低壓壓縮機壓比和最佳高壓透平膨脹比增大。這為繫統的優化設計與節能運行提供瞭理論指導。
운용열역학제이정률,분석료항온조건하,불가역중랭회열재열태양능포뢰돈열궤계통적손실화효솔。결과표명:계통적효솔수취광비、고/저온측환열기유효도적제고이증가;상동공작온도하,제고저온측환열기유효도대계통효솔적제고수익경대。재급정저압압축궤압비화고압투평팽창비시,수착회열기유효도적증대,계통최대효솔증가,최가총압비감소;수착고/저온측환열기유효도적증대,계통최대효솔증가,최가총압비증대。재급정총압비시,수착회열기、고저온측환열기유효도적증가,계통최대효솔증가,최가저압압축궤압비화최가고압투평팽창비증대。저위계통적우화설계여절능운행제공료이론지도。
An exergy analysis has been carried out for solar-driven irreversible intercooled regenerated reheated Brayton heat en-gine system under constant temperature based on second law of thermodynamics.Analysis shows that exergy efficiency of the system will increase with concentrated ratio and high/low temperature side heat exchanger efficiency improvement.Improving the low temperature side heat exchanger efficiency at the same working temperature raises more profits for exergy efficiency of the system.Given the low pressure compressor pressure ratio and the high pressure turbine expansion ratio,the biggest exergy effi-ciency of the system increases and the best total pressure ratio decreases with the increase of regenerator effectiveness;Along with the rising of the high/low temperature side heat exchanger efficiency,the biggest exergy efficiency of the system increases, and the best total pressure ratio of the system increases.Given a total pressure ratio,as the regenerator and the high/low temper-ature side heat exchanger increase,the biggest exergy efficiency of the system increases,the best low pressure compressor pres-sure ratio and the optimum high pressure turbine expansion ratio increase.This provides theoretical guidance for the optimal de-sign and energy saving operation of the system.