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Theoretical Analysis of Annular Elliptic Finned Tube Evaporative Condenser Based on Field Measurement 被引量:2
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作者 GU Yaxiu WANG Junwei +5 位作者 WANG Xinru Ll Mohua PAN Song LIU Guangdong WANG Wentao GING Zexiang 《Journal of Thermal Science》 SCIE EI CAS CSCD 2020年第5期1355-1369,共15页
In this article,a new evaporative condenser with an annular elliptic firmed tube heat exchanger that includes a round inner tube and elliptic outer finned tube was designed and analyzed.The refrigerant flows between t... In this article,a new evaporative condenser with an annular elliptic firmed tube heat exchanger that includes a round inner tube and elliptic outer finned tube was designed and analyzed.The refrigerant flows between the round inner tube and the elliptic outer tube,and it simultaneously exchanges heat with the cooling water in the inner tube,the spray water,and the cooling air flowing past the outer tube.Using field measurement for the traditional round finned tube evaporative condenser in the Futong Metro Station of Line 14 in Beijing,China,the theoretical heat transfer performance of the annular elliptic finned tube evaporative condenser was analyzed and simulated.Compared with a round finned tube heat exchanger,the heat exchange capacity of the annular elliptic finned tube increased by 2.34%to 9.28%;the total heat transfer coefficient increased by 47.42%,and the power consumption of the fan in the air-conditioning system with an annular elliptic finned tube heat exchanger decreased by 11.18%to 14.65%.Therefore,the energy-saving performance and the heat transfer performance of the new annular elliptic finned tube heat exchanger were enhanced compared to the round finned tube heat exchanger. 展开更多
关键词 evaporative condenser finned tube heat exchanger annular elliptic tube heat transfer enhancement air-conditioning system metro station
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Theoretical Performance Analysis of an Ejector Enhanced High-Temperature Heat Pump with Dual-Pressure Condensation and Evaporation 被引量:1
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作者 BAI Tao LIU Ye +1 位作者 YAN Gang YU Jianlin 《Journal of Thermal Science》 SCIE EI CAS CSCD 2022年第5期1367-1379,共13页
In this paper,an ejector enhanced high-temperature heat pump with dual-pressure condensation and evaporation is proposed to improve the system performance.Theoretical analyses of the system operation characteristics a... In this paper,an ejector enhanced high-temperature heat pump with dual-pressure condensation and evaporation is proposed to improve the system performance.Theoretical analyses of the system operation characteristics are conducted using energetic and exergetic methods.The performance comparisons among the basic cycle,parallel compression cycle,and ejector enhanced cycle are conducted with six different refrigerants,including R245fa,R600a,R1234ze(Z),R1336mzz(Z),R1224yd(Z),and R1233zd(E).The results demonstrate that environmentally-friendly refrigerant R1234ze(Z)would be a promising alternative refrigerant.Compared with the basic cycle and parallel compression cycle at selected operation conditions,29.5%and 12.6%improvements in COP,and 16.7%and 11.1%higher system exergy efficiency are achieved in the ejector enhanced cycle on average.The volumetric heating capacity of the ejector enhanced cycle is increased by 15.7%–21.7%.The ejector enhanced cycle outperforms the other two cycles in high-temperature heat pump applications at the large temperature lift and temperature rise in the heat sink.The assessment offers an option to improve the energy utilization efficiency of the high-temperature heat pumps. 展开更多
关键词 THERMODYNAMICS EXERGY high-temperature heat pump EJECTOR dual-temperature condensation/evaporation
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Numerical Study of Heat and Moisture Transfer in Textile Materials by a Finite Volume Method 被引量:2
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作者 C.Ye H.Huang +1 位作者 J.Fan W.Sun 《Communications in Computational Physics》 SCIE 2008年第9期929-948,共20页
This paper focuses on the numerical study of heat and moisture transfer in clothing assemblies,based on a multi-component and multiphase flow model which includes heat/moisture convection and conduction/diffusion as w... This paper focuses on the numerical study of heat and moisture transfer in clothing assemblies,based on a multi-component and multiphase flow model which includes heat/moisture convection and conduction/diffusion as well as phase change.A splitting semi-implicit finite volume method is proposed for solving a set of nonlinear convection-diffusion-reaction equations,in which the calculation of liquid water content absorbed by fiber is decoupled from the rest of the computation.The method maintains the conservation of air,vapor and heat flux(energy).Four types of clothing assemblies are investigated and comparison with experimental measurements are also presented. 展开更多
关键词 Fibrous porous medium multi-component flow clothing assemblies finite volume method condensation/evaporation.
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On-line matrix addition for detecting aerosol particles
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作者 ZHOU Liuzhu1,2, ZHU Yuan1, GUO Xiaoyong1, ZHAO Wenwu1, ZHENG Hai-yang1, Gu Xuejun1, FANG Li1 & ZHANG Weijun1 1. Lab of Environmental Spectroscopy, Anhui Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Hefei 230031, China 2. Qufu Normal University, Qufu 273165, China 《Science China(Physics,Mechanics & Astronomy)》 SCIE EI CAS 2006年第2期187-194,共8页
Single aerosol particles were measured by matrix-assisted laser desorp-tion/ionization (MALDI) with an aerosol time-of-flight mass spectrometer (ATOFMS). The inlet to the ATOFMS was coupled with an evaporation/condens... Single aerosol particles were measured by matrix-assisted laser desorp-tion/ionization (MALDI) with an aerosol time-of-flight mass spectrometer (ATOFMS). The inlet to the ATOFMS was coupled with an evaporation/condensation flow cell that allowed matrix addition by condensation onto the particles. The coated particles entered the ion source through three-stage differentially pumped capillary inlet and were then ionized by a focused 266 nm Nd:YAG laser. The mass spectra and aerodynamic size of the single particles can be obtained simultaneously. The on-line matrix addition technique makes it possible to identify biological aerosols in real-time. 展开更多
关键词 ATOFMS evaporation/condensation MALDI.
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