小型风力-压缩空气储能系统研究概述
详细信息    查看全文 | 推荐本文 |
  • 英文篇名:Application Overview of Small Compressed Air Energy Storage System
  • 作者:谭心 ; 赵琛 ; 虞启辉 ; 程西
  • 英文作者:TAN Xin;ZHAO Chen;YU Qi-hui;CHENG Xi-song;School of Mechanical Engineering,Inner Mongolia University of Science & Technology;
  • 关键词:压缩空气储能 ; 小型 ; 储能技术 ; 释能技术
  • 英文关键词:compressed air energy storage;;small;;energy storage technology;;release energy technology
  • 中文刊名:YYYQ
  • 英文刊名:Chinese Hydraulics & Pneumatics
  • 机构:内蒙古科技大学机械工程学院;
  • 出版日期:2019-01-15
  • 出版单位:液压与气动
  • 年:2019
  • 期:No.329
  • 基金:国家自然科学基金(61765012);; 内蒙古科技创新引导基金(2017CXYD-2);; 内蒙古自治区高等学校研究项目(NJZZ18139)
  • 语种:中文;
  • 页:YYYQ201901011
  • 页数:12
  • CN:01
  • ISSN:11-2059/TH
  • 分类号:50-61
摘要
小型压缩空气储能系统是分布式能源系统的重要组成部分,是弥补新能源发电系统波动性和随机性的一种有效方法。通过查找国内外相关文献,对小型压缩空气储能系统的关键部件进行综述,得到小型压缩空气储能技术和释能技术的发展方向。基于当前研究现状,得出结论:首先为了提高系统效率要解决耦合后功率不匹配问题,其次为满足风力发电机组空间受限的特点应对压缩空气进行一体化设计,最后对压缩空气关键技术进行总结,并给出了有待解决问题的研究方案。
        A small compressed air energy storage system is an important part of distributed energy system,and it is an effective device to make up for fluctuation and randomness of new energy generation system. The key components of small compressed air energy storage system are summarized through related literatures at home and abroad,and development direction of small compressed air energy storage technology and energy release technology is obtained. Based on the current research status,the following conclusions are obtained: firstly,to improve the system efficiency,it is necessary to solve the problem of power mismatch after coupling; secondly,an integrated design of compressed air should be carried out to meet the space limitation of wind turbine; finally,the key technology of compressed air is summarized and a research scheme of the problem to be solved is given.
引文
[1]Eia.US Energy Information Administration[A].Washing-ton:International Energy Outlook,2017.
    [2]WANG Jun.Discussions on New Energy Development[J].Power System and Clean Energy,2011,27(12):1-7.
    [3]ZHANG Liying,YE Tinglu,XIN Yaozhong,et al.Problems and Measures of Power Grid Accommodating Large Scale Wind Power[J].Proceedings of the CSEE,2010,30(25):1-9.
    [4]赵艳雷,李海东,张磊,等.基于快速储能的风电潮流优化控制系统[J].中国电机工程学报.2012,(13):21-28.ZHAO Yanlei,LI Haidong,ZHANG Lei,et al.Wind Power Flow Optimization Control System Based on Fast Energy Storage[J].Proceedings of the CSEE,2012,(13):21-28.
    [5]CHEN H,CONG T N,YANG W,et al.Progress in Electrical Energy Storage System:A Critical Review[J].Progress in Natural Science,2009,(19):291-312.
    [6]FRANCISCO Díaz-González.A Review of Energy Storage Technologies for Wind Power Applications[J].Renewable and Sustainable Energy Reviews 2012,(16):2154-2171.
    [7]REN Dongming,XIE Xuxuan,LIU Jian.To Promote Energy Production and Consumption Revolution in China[J].Energy of China,2013,35(10):6-10.
    [8]SHI Lishan.China’s Renewable Energy Development Strategy[J].Sino-global Energy,2010,15(3):29-32.
    [9]余本善.储能技术与产业现状及发展趋势[J].石油科技论坛,2017,(1):57-61.YU Benshan.Energy Storage Technology and Industry Status and Development Trend[J].Petroleum Technology Forum,2017,(1):57-61.
    [10]张军.国际储能技术路线图研究综述[J].储能科学与技术,2015,4(3):261-266.ZHANG JUN.Overview of International Studies on Energy Storage Technologles[J].Energy Storage Science and Technology,2015,4(3):261-266.
    [11]JING Ping,XU Guizhi.Large-scale Energy Storage Tech-nology for Global Energy Internet[J].Smart Grid,2015,3(6):487-492.
    [12]丁国生.盐穴地下储气库技术[J].天然气工业,2003,23(2):106-108.DING Guosheng.Salt Cavern Underground Gas Storage Technology[J].Natural Gas Industry,2003,23(2):106-108.
    [13]金维平,彭益成.硬岩地区压缩空气储能工程地下储气洞室选址方法研究[J].电力与能源,2017,38(1):63-67.JIN Weiping,PENG Yicheng.Underground Gas Storage Cavern Location Method for Compressed Air Energy Storage Engineering in Hard Rock Area[J].Electricity and Energy,2017,38(1):63-67.
    [14]梅生伟,公茂琼,秦国良,等.基于盐穴储气的先进绝热压缩空气储能技术及应用于前景[J].电网技术,2017,41(10):3393-3399.MEI Shengwei,GONG Maoqiong,QIN Guoliang,et al.Advanced Adiabatic Compressed Air Energy Storage Technology Based on Salt Cavern Gas Storage and Its Application In the Future[J].Power System Technology,2017,41(10):3393-3399.
    [15]JIA Hongxin,ZHANG Yu,WANG Yufei,et al.Energy Storage for Wind Energy Applications[J].Renewable Energy Resources,2009,27(6):10-15.
    [16]刘志红.风水互补微电网的功率波动节能控制数学建模[J].电网与清洁能源,2015,31(10):124-127.LIU Zhihong.Power Fluctuations Energy Saving Control Mathematical Modeling of the Wind and Hydro Power Complementary Micro Grid[J].Power System and Clean Energy,2015,31(10):124-127.
    [17]TIAN Jun,YONG Qiang,CHEN Caihong.Application of Advanced Energy Storage Technologies in Distrbuted Generation[J].Electrical Engineering,2010,(8):28-32.
    [18]KAZMPOUR S J,MOGHADDAM M P,HAGHIFAM MR.Electric Energy Storage System in Market-based Economy:Comparison of Emerging and Traditional Technologies[J].Renewable Energy,2009,34(12):2630-2639.
    [19]OLDENBURG,CURTIS M,PAN LH.Porous Media Com-pressed-air Energy Storage(PM-CAES):Theory and Simulation of the Coupled Well Bore-reservoir System[J].Transport in Porous Media,2013,97(2):201-221.
    [20]付兴.盐穴压缩空气储能库建设现状及工程难点分析[J].中国井矿盐,2017,3(58):14-18.FU Xing.Current Situation of the Construction of Salt Compressed Air Energy Storage and Analysis of the Difficulty in Salt Cavern Engineering[J].China Well and Rock Salt,2017,3(58):14-18.
    [21]KIM Y M,LEE J H,KIM S J,et al.Potentialand Evolution of Compressed Air Energy Storage:Energy and Exergy Analyses[J].Entropy,2012,(14):1501-1521.
    [22]REN S,BAI Y M,ZHANG J P,et al.Experimental Investigation of the Fatigue Properties of Salt Rock[J].International Journal of Rock Mechanics and Mining Sciences,2013,(64):68-72.
    [23]FUJIHARA T,IMANO H,OSHIMA K.Development of Pump Turbine for Seawater Pumped-storage Power Plant[J].Hitachi Review,1998,47(5):199-202.
    [24]ZHANG Wenliang,QIU Ming,LAI Xiaokang.Application of Energy Storage Technologies in Power Grids[J].Power System Technology,2008.32(7)1-9.
    [25]SAMIR S.Large Energy Storage Systems Handbook[M].CRC Press,2011:112-152.
    [26]Prospects for Large-scale Energy Storage in Decarbonised Power Grids.International energy[R/OL].[2018-07-06].http://www.iea.org/publications/freepublications/publication/energy_storage.pdf.
    [27]SAMIR S,ROBERT H W.Compressed Air Energy Storage:Theory,Resources and Applications for Wind Power[R].Princeton Environmental Institute Princeton University,2008.
    [28]MEI Shengwei,XUE Xiaodai,CHEN Laijun.Discussion on Compressed Air Energy Storage Technology and Its Application[J].Southern Power System Technology,2016,3(10):12-15.
    [29]SAIDUR R.A Rview Compressed-air Energy Use and Energy Savings[J].Renewable and Sustainable Energy Reviews,2010,(14):1135-1153.
    [30]MACK D R.Something New in Power Technology[J].Potentials,1993,(12):40-42.
    [31]CHEN Haishen,DING Yulong.A Method of Storing Energy and a Cryogenic Energy Storage System:PCT/GB 2007/000667[P].2007.
    [32]JANNELLI E,MINUTILLO M,LUBRANO A,et al.ASmall-scale CAES(Compressed Air Energy Storage System)for Stand-alone Renewable Energy Power Plant for a Radio Base Station:a Sizing-design Methodology[J].Energy,2014,(78):313-322.
    [33]王成山,武震,杨献莘,等.基于微型压缩空气储能的混合储能系统建模与试验验证[J].电力系统自动化,2014,38(23):22-26.WANG Chengshan,WU Zhen,YANG Xianshen.Modeling and Verification of Hybrid Energy Storage System Based on Micro Compressed Air Energy Storage[J].Automation of Electric Power Systems,2014,38(23):22-26.
    [34]VOLLAROR D L,FAGA F,TALLINI A,et al.Energy and Thermodynamically Study of a Small Innovative Compressed Air Energy Storage System(micro-system)[J].Energy Procedia,2015,(82):645-651.
    [35]SUN Hao,LUO Xing,WANG Jihong.Feasibility Study of a Hybrid Wind Turbine System-Integration with Compressed Air Energy Storage[J].Applied Energy,2015,(137):617-628.
    [36]ZHANG Xinjing.Investigation on Compressed Air Energy Storage System[D].Beijing:Graduate University of Chinese Academy of Sciences,2011.
    [37]HOUWING M,PAPAEFTHYMIOU G,HEIJNEN P W,et al.Balancing Wind Powerwith Virtual Power Plants of Micro-CHPs[C].Power Tech,2009 IEEE Bucharest,IEEE;2009:1-7.
    [38]DIAZ-González F,Sumper A,Gomis-Bellmunt O,Villafáfila-Robles R.A Review of Energy Storage Technologies for Wind Power Applications[J].Renew Sustain Energy Rev,2012(16):2154-2171.
    [39]GUL T,STENZEL T.Intermittency of Wind:the Wider Picture[J].Glob Energy Issues,2006,(25):163-86.
    [40]DENG Guangyi,GUO Zuogang,CHEN Guangming.Design and Thermodynamic Analysis of Compressed Air Energy Storage System[J].Energy Storage Science and Technology,2013,2(6):615-619.
    [41]LE H T,SANTOSO S.Operating Compressed-air Energy Storage as Dynamic Reactive Compensator for Stabilising Wind Farms Under Grid Fault Conditions[J].IET Renew Power Gener,2013,(7):717-726.
    [42]CAVALLO A.Controllable and Affordable Utility-scale Ele-ctricity from Intermittent Wind Resources and Compressed Air Energy Storage(CAES)[J].Energy,2007,(32):120-127.
    [43]LI Liansheng,YANG Qichao,ZHAO Yuanyang.Research on Micro-small Scale of Compressed Air Energy Storage System[J].Fluid Machinery,2014,3(42):24-27.
    [44]WOLF D,BUDT M.LTA-CAES-A Low-temperature App-roach to Adiabatic Compressed Air Energy Storage[J].Apply Energy,2014,(125):158-164.
    [45]GRAZZINI G.MILAZZO A.A Thermodynamic Analysis of Multistage Adiabatic CAES[J].Proc IEEE,2012,100(2):461-72.
    [46]QIN C,LOTH E.Liquid Piston Compression Efficiency with Droplet Heat Transfer[J].Apply Energy,2014,(114):539-550.
    [47]MEI S W,WANG J J,FANG T,et al.Design and Engineering Implementation of Non-supplementary Fired Compressed Air Energy Storage System:TICC-500[J].Science China Technological Sciences,2015,58(4):600-611.
    [48]WANG S,ZHANG X,YANG L,et al.Experimental Study of Compressed Air Energy Storage System with Thermal Energy Storage[J].Energy,2016,(103):182-191.
    [49]MEI Shengwei,LI Rui.Smart Micro Energy Grid and Its Engineering Implementation[J].Chinese Association for Artificial Intelligence Communication,2016,6(10):1-5.
    [50]MEI S W,LI R,XUE X D,et al.Paving the Way to Smart Micro Energy Grid:Concepts,Design Principles,and Engineering Practices[J].CSEE Journal of Power and Energy Systems,2017,3(4):440-449.
    [51]LI Xuemei,YANG Ke,ZHANG Yuan.Optimization Design of Compression and Expansion Stages in Advanced Adiabatic Compressed Air Energy Storage System[J].Journal of Engineering Thermophysics,2013,34(9):1649-1653.
    [52]GRAZZINI G,MILAZZO A.A Thermodynamic Analysis of Multistage Adiabatic CAES[J].Proceedings of the IEEE,2012,100(2):461-472.
    [53]ZHANG Y,YANG K,LI X M,et al.The Thermodynamic Effect of Thermal Energy Storage on Compressed Air Energy Storage System[J].Renewable Energy,2013,(50):227-235.
    [54]KUSHNIR R,DAYAN A,ULLMANN A.Temperature and Pressure Variations Within Compressed Air Energy Storage Caverns[J].International Journal of Heat and Mass Transfer,2012,55(21-22):5616-5630.
    [55]RAJU M,KHAITAN S K.Modeling and Simulation of Compressed Air Storage in Caverns:A Case Study of the Huntorf Plant[J].Applied Energy,2012,89(1):474-481.
    [56]FACCI A L,SNCHEZ D,JANNELLI E,et al.Trigene-rative Micro Compressed Air Energy Storage:Concept and Thermodynamic Assessment[J].Applied Energy,2015,(158):243-254.
    [57]SAFAEI H,KEITH D W.Compressed Air Energy Storage with Waste Heat Export:An Alberta Case Study[J].Energy Conversion&Management,2014,78(78):114-124.
    [58]YANG Z,WANG Z,RAN P,et al.Thermodynamic Analysis of a Hybrid Thermal-compressed Air Energy Storage System for the Integration of Wind Power[J].Applied Thermal Engineering,2014,66(1):519-527.
    [59]LI Rui,CHEN Laijun,ZHAO Bo,et al.Economic Dispatch of Integrated Heat-power Energy Distribution System with Concentrating Solar Power Energy Hub[J].Journal of Energy Engineering,2017,143(5):1-11.
    [60]XU Yujie,CHEN Haisheng,LIU Jia,et al.Characteristic Analysis on the Wind and Solar Complementary Compressed Air Energy Storage System[J].Proceedings of the Chinese Society for Electrical Engineering,2012,32(20):88-95.
    [61]CARDENAS B,PIMM A J,KANTHARAJ B,et al.Lowe-ring the Cost of Large-scale Energy Storage:High Temperature Adiabatic Compressed Air Energy Storage[J].Propulsion and Power Research,2017,6(2):126-33.
    [62]CHO H,CHUNG J T,KIM Y.Influence of Liquid Refrigerant Injection on the Performance of an Inverter-driven Scroll Compressor[J].International Journal of Refrigeration,2003,26(1):87-94.
    [63]LIU B,CHEN L,MEI S,et al.The Impact of Key Parameters on the Cycle Efficiency of Multi-stage RCAESSystem[J].Journal of Modern Power Systems&Clean Energy,2014,2(4):422-430.
    [64]LI Xuemei,YANG Ke,ZHANG Yuan.Optimization Design of Compression and Expansion Stages in Advanced Adiabatic Compressed Air Energy Storage System[J].Journal of Engineering Thermophysics,2013,34(9):1649-1653.
    [65]SZABIOWSKI L,KRAWCZYK P,BADYDA K,et al.Energy and Exergy Analysis of Adiabatic Compressed Air Energy Storage System[J].Energy,2017,(138):12-18.
    [66]徐玉杰,陈海生,刘佳,等.风光互补的压缩空气储能与发电一体化系统特性分析[J].中国电机工程学报,2012,32(20):88-95.XU Yujie,CHEN Haisheng,LIU Jia,et al.Performance Analysis on an Integrated System of Compressed Air Energy Storage and Electricity Production with Wind-solar Complementary Method[J].Proceedings of the CSEE,2012,32(20):88-95.
    [67]HARTMANN N,VHRINGER O,KRUCK C,et al.Simulation and Analysis of Different Adiabatic Compressed Air Energy Storage Plant Configurations[J].Applied Energy,2012,93(5):541-548.
    [68]SAADAT M,SHIRAZI F A,Li P Y.Revenue Maximization of Electricity Generation for a Wind Turbine Integrated with a Compressed Air Energy Storage System[C].American Control Conference.IEEE,2014:1560-1565.
    [69]JOONG K.Analysis and Optimization of a Quasiisothermal Compression and Expansion Cycle for Ocean Compressed Air Energy Storage[C].Oceans,2012,vol,no,pp.1-8,14-19Oct.2012.
    [70]SHIRAZI F.Iterative Optimal and Adaptive Control of a Near Isothermal Liquid Piston Air Compressor in a Compressed Air Energy Storage System[J].Amercan Control Conference(ACC),2013,vol,on,pp.2934-2939,17-19 June 2013.
    [71]CONEY M W,STEPHENSON P,MALMGREN A,et al.Development of Achieve Quasi-isothermal Compression[C].Proceedings of the 16th International Compressor Engineering Conference,West Lafayette,USA;Purdue University Purdue e-Pubs,2002:1508.
    [72]VAN De,VEN J,LIU L.Piston Gas Compression[J].Applied Energy,2009,86(10):2183-2191.
    [73]QIN C,LOTH E.Liquid Piston Compression Efficiency with Droplet Heat Transfer[J].Applied Energy,2014,(114):539-550.
    [74]许剑,陈海生,盛勇,等.一种新型流程的超临界空气储能系统:CN202970911U[P].2013-06-05.XV Jian,CHEN Haisheng,SHENG Yong,et al.A new Type of Supercritical Air Energy Storage System:CN202970911U[P].2016-06-05.
    [75]陈海生,许剑,刘金超,等.超临界空气储能/释能系统:CN102758689A[P].2012-10-31.CHEN Haisheng,XV Jian,LIU Jinchao,et al.Supercritical Air Energy Storage/Energy Release System:CN102758689A[P].2012-10-31.
    [76]王亮,陈海生,刘金超,等.高效高压液态空气储能/释能系统:CN202811079U[P].2013-3-20.WANG Liang,CHEN Haisheng,LIU Jinchao,et al.Efficient High Pressure Liquid Air Energy Storage/Energy Release System:CN 202811079U[P].2013-3-20.
    [77]杨亮.超临界空气填充床蓄热及传热特性实验研究[D].北京:中国科学院大学,2013.YANG Liang.Experimental Study on Heat Storage and Heat Transfer Characteristics of Supercritical Air Packed Beds[D].Beijing:Chinese Academy of Sciences University,2013.
    [78]MORGAN R S,NELMES,et al.Liquid Air Energy StorageAnalysis and First Results From a Pilot Scale Demonstration Plant[J].Applied Energy,2015,(137):845-853.
    [79]秦浩.基于朗肯循环的内燃机废气能量回收试验系统开发[D].天津:天津大学,2010.QIN Hao.Development of an Exhaust Gas Energy Recovery Test System for Internal Combustion Engines Based on Rankine Cycle[D].Tianjin:Tianjin University,2010.
    [80]于立军,朱亚东,吴元旦.中低温余热发电技术[M].上海:上海交通大学出版社,2015.YU Lijun,ZHU Yadong,WU Yuandan.Low-temperature Waste Heat Power Generation Technology[M].Shang hai:Shanghai Jiaotong University Press,2015.
    [81]邢子文.螺杆压缩机-理论、设计及其应用[M].天津:天津大学机械学院,2000.XING Ziwen.Screw Compressors-Theory,Design and App-lications[M].Tianjin:Tianjin University of Mechanical Engineering,2000.
    [82]黄翔超.有机工质双循环螺杆机系统研究[D].天津:天津大学机械学院,2006.HUANG Xiangchao.Research on Double-circle Screw Machine System of Organic Working Medium[D].Tianjin:Tianjin University of Mechanical Engineering,2006.
    [83]王艳飞,时金甫,等.螺杆膨胀动力机的应用前景[J].纯碱工业,2006,(5):14-15.WANG Yanfei,SHI Jinfu,et al.Application Prospect of Screw Expansion Power Machine[J].Soda Industry,2006,(5):14-15.
    [84]孙富德.螺杆膨胀机在火力发电厂中的应用[J].山东煤炭科技,2002,(3):27-29.SUN Fude.Screw Expander in Thermal Power Plant[J].Shandong Coal Science and Technology,2002,(3):27-29.
    [85]李汉炎,李学锋,等.小型太阳能动力用螺杆膨胀机[J].太阳能学报,1997,(4):305-308.LI Hanyan,LI Xuefeng,et al.Small-scale Solar Power Screw Expander[J].Journal of Solar Energy,1997,(4):305-308.
    [86]ZIAPOUR B M.Performance Analysis of an Enhanced Thermosyphon Rankine Cycle Using Impulse Turbine[J].Energy,2009,(34):1636-1641.
    [87]沈维道,蒋智敏,等.工程热力学[M].北京:高等教育出版社,2001.SHEN Weidao,JIANG Zhimin,et al.Engineering Thermo-dynamics[M].Beijing:Higher Education Press,2001.
    [88]GRAVESEN J,et al.The Geometry of the Scroll Compressor[J].Siam Review,2001,43(1):45-50.
    [89]李连生,束鹏程,郁永章,等.涡旋型线对涡旋压缩机性能的影响[J].西安交通大学学报,1997,31(2):45-50.LI Liansheng,SHU Pengcheng,YU Yongzhang,et al.Effect of Vortex Profile on Performance of Scroll Compressor[J].Journal of Xi’an Jiaotong University,1997,31(2):45-50.
    [90]BUSH J W,BEAGLE W P,HOUSMAN M E.Maximizing Scroll Compressor Displacement Using Generalized Wrap Geometry[C].Proceedings of International Compressor Engineering Conference at Purdue,USA,1994:205-210.
    [91]GAO Xiaojun,LI Liansheng,ZHAO Yuanyang,et al.Re-search on a Scroll Expander Used for Recovering Work in a Fuel Cell[J].International Journal of Thermodynamics,2004,7(1):1-8.
    [92]YANG L,WANG J,MANGAN S.Mathematical Model and Energy Efficiency Analysis of a Scroll-type Air Motor[J].International Journal of Applied Mathematics,2008,38(1):14-19.
    [93]ZHAO Yuanyang,LI Liansheng,SHU Pengcheng.Thermodynamic Simulation of Scroll Compressor Expander Module in Automotive Fuel Cell Engine[J].Journal of Automobile Engineering,32006,220(5):571-577.
    [94]WANG J,YANG L,LUO X,et al.Mathematical Modelling Study of Scroll Air Motors and Energyefficiency Analysis---Part I[J].IEEE/ASME Transactions on Mechatronics,2011,16(1):112-121.
    [95]YANAGISAWA T,FUKUTA Y,OGI T,et al.Performance of an Oil-free Scroll-type Air Expander[C].International Conference on Compressors and Their Systems,2001:167-174.
    [96]GAO Xiaojun,LI Liansheng,ZHAO Yuanyang,et al.Research on a Scroll Expander Used for Recovering Work in a Fuel Cell[J].International Journal of Thermodynamics,2004,7(1):1-8.
    [97]YANG L,WANG J,MANGAN S.Mathematical M9607Odel and Energy Efficiency Analysis of a Scroll-type Air Motor[J].International Journal of Applied Mathematics,2008,38(1):14-19.
    [98]ZHAO Yuanyang,LI Liansheng,SHU Pengcheng.Thermodynamic Simulation of Scroll Compressor Expander Module in Automotive Fuel Cell Engine[J].Journal of Automobile Engineering,2006,220(5):571-577.
    [99]SEBASTIEN D.Design,Optimization and Modeling of an Organic Rankine Cycle for Waste Heat Recovery[D].Belgium:University of Liege,2009.
    [100]WANG J,YANG L,LUO X,et al.Mathematical Modelling Study of Scroll Air Motors and Energy Efficiency Analysis Part I[J].IEEE/ASME Transactions on Mechatronics,2011,16(1):112-121.
    [101]WANG B L.A General Geometrical Model of Scroll Compressors Based on Discretional Initial Angles of Involute[J].International Journal of Refrigeration,2005,28(6):958-966.
    [102]WANG J,YANG L,LUO X,et al.Mathematical Modelling Study of Scroll Air Motors and Energy Efficiency Analysis[J].IEEE/ASME Transactions on Mechatronics,2011,16(1):112-121.
    [103]WANG J,LUO X,YANG L,et al.Mathematical Modelling Study of Scroll Air Motors and Energy Efficiency Analysis---Part II[J].IEEE/ASME Transactions on Mechatronics,2011,16(1):122-132.
    [104]BADAMI M,MURA M.Preliminary Design and Controll-ing Strategies of a Small-scale Wood Waste Rankine Cycle(RC)with a Reciprocating Steam Engine(SE)[J].Energy,2009,(34):1315-1324.
    [105]冯黎明,高文志,秦浩,等.用于发动机余热回收的往复活塞式膨胀机热力学分析[J].天津大学学报,2011,44(8):665-670.FENG Liming,GAO Wenzhi,QIN Hao,et al.Thermodynamic Analysis of Reciprocating Piston Expander Used for Engine Waste Heat Recovery[J].Journal of Tianjin University,2011,44(8):665-670.
    [106]OLIVIRE Dumont,RMI Dickes,VINCENT Lemort.Ex-perimental Investigation of Four Volumetric Lemort[J].Energy Procedia,2017,(129):859-866.
    [107]KONDEPUDI S N,MURALI K,LORSH H.Voiding Heat Pump Evaporator Frost Through the Use of Desiccants[C].ASME-JSES-JSME International Solar Energy Conference.New York,1995,(1):25-29.
    [108]LIU O Z L,WANG H Y,ZHANG X H,et al.An Experimental Study on Minimizing Frost Deposition on a Cold Surface Under Natural Convection Conditions by Use of a Novel Anti-frosting Paint[J].International Journal of Refrigeration,2006,29(2):229-236.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700