Energy performance investigation of a district cooling system

被引:0
|
作者
Bukshaisha, A. [1 ]
Beitelmal, A. H. [1 ]
机构
[1] Qatar Fdn, Qatar Environm & Energy Res Inst, Doha, Qatar
关键词
district cooling; centralized chiller system; HVAC; energy efficiency;
D O I
10.2495/EQ160151
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A steady-state model is developed to investigate the effect of the chilled water supply temperature and the inlet condenser water temperature on the performance of the centralized chiller system. The current results show that increasing the chilled water supply temperature by 1 degrees C increases the coefficient of performance (COP) of the chiller by 1% to 3% and reduces the total cooling system power consumption by an average of 2% when operating the chiller system at the design capacity level. Decreasing the entering condenser water temperature by 1 degrees C increases the chiller COP by an average of 2% and reduces the total power demand by an average of 1.5%. The reduction in the power consumption translates into a measurable annual reduction in CO2 emissions. The amount of CO2 emissions reduction depends on the type of fuel used to produce the electricity available for the chiller system. The current results also show that the chilled water temperature can be safely raised to a higher set point temperature than the industry standard set point of 5-6 degrees C while preserving the cooling capacity requirements. In addition, the current results suggest that chilled water supply temperature set point of 8 degrees C to 10 degrees C (46 degrees F to 50 degrees F) would provide energy savings of 5% and 9.8%, respectively, over the base case used of 6 degrees C while reducing the carbon footprint by the same percentage.
引用
下载
收藏
页码:157 / 166
页数:10
相关论文
共 50 条
  • [21] District cooling system energy modeling methodology for new urban developments
    Chow, TT
    Chan, LS
    Fong, KF
    Yau, R
    Au, WH
    Cheng, V
    PROCEEDINGS OF THE 4TH INTERNATIONAL CONFERENCE ON INDOOR AIR QUALITY, VENTILATION AND ENERGY CONSERVATION IN BUILDINGS, VOLS I-III, 2001, : 1847 - 1854
  • [22] Optimal chiller loading in a district cooling system with thermal energy storage
    Powell, Kody M.
    Cole, Wesley J.
    Ekarika, Udememfon F.
    Edgar, Thomas F.
    ENERGY, 2013, 50 : 445 - 453
  • [23] Investigation of an efficient and green system based on liquid air energy storage (LAES) for district cooling and peak shaving: Energy and exergy analyses
    Kandezi, Morteza Saleh
    Naeenian, Seyed Mojtaba Mousavi
    SUSTAINABLE ENERGY TECHNOLOGIES AND ASSESSMENTS, 2021, 47
  • [24] CFD Investigation on Parameters Affecting the Thermal Performance of Mechanical Draft Cooling Towers in District Cooling Plants
    Khalil, Essam E.
    Bialy, Esmail M.
    2017 ASHRAE ANNUAL CONFERENCE PAPERS, 2017,
  • [25] Performance investigation of the capric and lauric acid mixture as latent heat energy storage for a cooling system
    Dimaano, MNR
    Watanabe, T
    SOLAR ENERGY, 2002, 72 (03) : 205 - 215
  • [26] Experimental investigation on the performance of a water spray cooling system
    Zhou Nianyong
    Chen Fujiang
    Cao Yuchun
    Chen Mengmeng
    Wang Yu
    APPLIED THERMAL ENGINEERING, 2017, 112 : 1117 - 1128
  • [27] Investigation of a hybrid solar and geothermal driven absorption cooling system for district applications
    Coskun, C.
    Oktay, Z.
    Dincer, I.
    INTERNATIONAL JOURNAL OF EXERGY, 2012, 11 (02) : 205 - 215
  • [28] Investigation to Enhance the Performance of Computer Processor Cooling System
    Prasad, P. Gayathri
    Chilamkurti, L. V. R. S. V. Prasad
    Santarao, K.
    5TH INTERNATIONAL CONFERENCE ON MATERIALS AND MANUFACTURING ENGINEERING-2020 (ICMME-2020), 2020, 954
  • [29] Revised energy performance of buildings directive and its effects on district heating and cooling
    Thomstrom, Erik
    Euroheat and Power (English Edition), 2020, 2020-January (01): : 13 - 15
  • [30] Performance assessment of a novel hybrid district energy system
    Coskun, C.
    Oktay, Z.
    Dincer, I.
    APPLIED THERMAL ENGINEERING, 2012, 48 : 268 - 274