ASHRAE IJHVAC 11-4-2005 International Journal of Heating Ventilating Air-Conditioning and Refrigerating Research《供暖 通风 空调和制冷研究的国际期刊 第11卷第4号》.pdf
《ASHRAE IJHVAC 11-4-2005 International Journal of Heating Ventilating Air-Conditioning and Refrigerating Research《供暖 通风 空调和制冷研究的国际期刊 第11卷第4号》.pdf》由会员分享,可在线阅读,更多相关《ASHRAE IJHVAC 11-4-2005 International Journal of Heating Ventilating Air-Conditioning and Refrigerating Research《供暖 通风 空调和制冷研究的国际期刊 第11卷第4号》.pdf(202页珍藏版)》请在麦多课文档分享上搜索。
1、 In tern a tiona 1 Jo urna 1 of Hea ting, Ven tila ting, Air-conditioning and Refrigerating Research Editor Reinhard Radermacher, Ph.D., Professor and Director, Center for Environmental Energy Engineering, Department of Mechanical Engineering, University of Maryland, College Park, USA Associate Edit
2、ors James E. Braun, Ph.D., P.E., Professor, Ray W. Herrick Laboratories, Alberto Cavallini, Ph.D., Professor, Dipartmento di Fisicia Tecnica, University of Padova, Italy Qingyan wan) Chen, Ph.D., Professor of Mechanical Engineering, School of Mechanical Engineering, Purdue University, West Lafayette
3、, Indiana, USA Srinivas Garimella, Ph.D., Associate Professor and Director, Advanced Thermal Systems Laboratory, Department of Mechanical Engineering, Iowa State University, Ames, Iowa, USA Leon R. Gicksman, Ph.D., Professor, Departments of Architecture and Mechanical Engineering, Massachusetts Inst
4、itute of Technology, Cambridge, USA Pega Hrnjak, Ph.D., Res. Professor and Co-Director ACRC, Department of Mechanical and Industrial Engineering, University of Illinois, Urbana-Champaign, USA Bjarne W. Olesen, Ph.D., Professor, International Centre for Indoor Environment and Energy Technical Univers
5、ity of Denmark Nils Koppels All, Lyngby, Denmark Roger R. Schmidt, Ph.D., Distinguished Engineer, iBM Systems and Technology Group, IBM Covoration, Poughkeepsie, New York, New York, USA Jeffrey D. Spitler, Ph.D., P.E., Professor, School of Mechanical and Aerospace Engineering, Oklahoma State Univers
6、ity, Stillwater, Oklahoma, USA Shengwei Wang, Ph.D., Professor and Associate Head, HVAC nor may any part of this book be reproduced, stored in a remeval system, or transmitted in any form or by any means-electronic, photocopying, recording, or other-without permission in wTiting from ASHRAE. Abstrac
7、ts-Abstracted and indexed by ASHRAE Abstract Center; Ei (Engineering Information, Inc.) Ei Compendex and Engineering Index; IS1 (Institute for Scientific Information) Web Science and Research Alert; and BSRIA (Building Services Research IS0 EN 7730, EN 13779; ASHRAE Standard 55). It would not be rea
8、sonable to require the criteria for the indoor environment to be fulfilled 100% of the operation time. Often in national building codes or standards deviation from the comfort range is allowed for a limited time (100 hours in the Danish standard DS-474). A mea- sure of the yearly quality of the indo
9、or environment could be how much of the time of occu- pancy the indoor environment is within the specified criteria (70%, go%, or 95%). FUTURE The coming years will show how this directive will impact the HVAC industry. From the beginning of a building project, considerations of which HVAC system to
10、 use must be evalu- ated. This should give the HVAC designer and consulting engineer a chance to get involved at an earlier stage of the building process. More focus will be put on differences in energy perfor- mance of systems, where a lot of data is still needed for many systems to be able to calc
11、ulate yearly energy performance. This will require some new research. REFERENCES ASHRAE. 2004. Standard 55-2004, Thermal environment conditions for human occupancy. Atlanta: CEN CR 1752. 1998. Ventilation for buildings: Design criteria for the indoor environment. Brussels. Directive 2002/91/EC of th
12、e European Parliament and of the council of 16 December 2002 on the energy DS 474. 1993. Standard for specification of the indoor thermal environment. Copenhagen, Danish Stan- ISO/DIS prEN13790. 2005. Thermal performance of buildings-Calculation of energy use for space heat- EN 13779. 2004. Ventilat
13、ion for non-residential buildings-Performance requirements for ventilation and American Society of Heating, Refrigerating and Air-conditioning Engineers, Inc. performance of buildings. European Commission. dards Association. ing and cooling. CEN, Brussels. room-conditioning systems. Brussels. VOLUME
14、 11, NUMBER 4, OCTOBER 2005 509 IS0 EN 7730. 2005. Moderate thermal environments-Determination of the PMV and PPD indices and specification of the conditions for thermal comfort. Geneva, International Standards Organization. M 343-EN-2004. Mandate to CEN, CENELEC and ETSI for the elaboration and ado
15、ption of standards for a methodology calculating the integrated energy performance of buildings and estimating the environ- mental impact, in accordance with the terms set forth in Directive 2002/91EC. prEN1525 1. 2005. Criteria for the indoor environment including thermal, indoor air quality, light
16、 and noise. CEN, Brussels. VOLUME 1 1, NUMBER 4 HVAC accepted September 1 0, 2004 Part I of this article was published in Volume 1 I, Issue 3, July 2005 This paper intends to present a comprehensive summary ofthe various studies that were con- ducted with respect to the lubricant influence on refrig
17、eradoi1 mixture properties, condensa- tion, and pressure drop, and tries to identifr some general relationships. In addition, the research methods and correlations presented on each of these subjects are summarized. Finally, technical recommendations regarding the lubricant influence in each of thes
18、e aspects are pro- vided in this paper. INTRODUCTION Cavallini et al. (2000) suggested that users of literature correlations to predict the lubricant influence on condensation note the reference temperature as well as two other points. The first point is to veri the vapor quality range for the given
19、 correlation, since the lubricant influence on condensation heat transfer is sensitive to the vapor quality. The other point is that in some cases the local oil concentration could vary from the oil concentrations that were reported within a given study due to measurement uncertainties and the diffi
20、culty to control the local oil concen- tration. Since the correlations are based on the reported oil concentrations, some inaccuracies could exist. Thome (1998) and Gidwani et al. (1998) presented literature review studies on the lubricant influences on refrigerant condensation and pressure drop. Th
21、e current work is intended to include more recent research studies and identie some general relationships. REFRIGERANT/OIL MIXTURE PROPERTIES Miscibility When immiscibility occurs, two liquid phases coexist: one is an oil-rich phase, and the other is a refiigerant-rich phase. In totally immiscible r
22、efrigerant/oil mixtures, the lubricant and the refrigerant can be treated separately. The immiscibility is likely to occur in the evaporator, which leads to the fact that more oil is trapped in the evaporator than in the condenser. Appar- ently, totally immiscible and partially miscible refrigerant/
23、oil pairs can lead to compressor oil starvation. Bo Shen and Eckhard A. Groll are at Purdue University, Ray W. Herrick Laboratories, West Lafayette, Ind. 511 512 HVAC the other is to use an equation of state to describe the vapor phase behavior and to use the activity coefficient model to describe t
24、he liquid phase behavior. Yokozeki et al. (2002), Hesse and Kruse (1988), and Bertucco et al. (1999) adopted the former method. Martz et al. (1996) implied that the method of using an equation of state and a mixing rule appeared to need too many uncertain oil properties. Thus, they recommended the u
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