ASHRAE NY-08-015-2008 Exergetically Efficient Thermal Energy Storage Systems for Sustainable Buildings《可持续建筑的热能效存储系统》.pdf
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1、98 2008 ASHRAE ABSTRACTThermal energy storage (TES) systems are examined fromthe perspectives of energy, exergy, environmental impact,sustainability and economics. Reductions possible throughTES in energy use and both pollution levels and environmentalimpact are described and highlighted with an ill
2、ustrativeexample. The importance of using exergy analysis to obtainmore realistic and meaningful assessments than the conven-tional energy analysis of the efficiency and performance of TESsystems is demonstrated. The results indicate that exergeticallyefficient TES can play a significant role in mee
3、ting societyspreferences for more efficient, environmentally benign,sustainable and economic energy use in various sectors, andappears to be an appropriate technology for addressing themismatches that often occur between the times of energy supplyand demand.INTRODUCTIONSociety faces many environment
4、al problems, spanning acontinuously growing range of pollutants, hazards and ecosys-tem degradation over ever wider areas. The most significantproblems are global climate change, stratospheric ozonedepletion and acid precipitation. The former is potentially themost important environmental problem re
5、lating to energyutilization. Increasing atmospheric concentrations of green-house gases are increasing the manner in which they trap heatradiated from the earths surface, thereby raising the surfacetemperature of the earth and as a consequence sea levels. Many potential solutions are proposed for cu
6、rrent envi-ronmental problems and harmful emissions. These include theaddition of pollution abatement equipment on discharges andstacks and the introduction of strategies for clean air, improv-ing the efficiency of devices and technologies and the substi-tution of renewable energy sources for fossil
7、 fuels (Mohr,2006; Craig et al., 2007; Bretschger and Smulders, 2007;Kuehr, 2007). TES appears to be the one of the more effectivemeasures and can play a significant role in reducing environ-mental impact. TES can also help make society more sustain-able. Sustainable development demands a sustainabl
8、e supplyof energy resources that, in the long term, is readily andsustainably available at reasonable cost and can be utilized forall required tasks without causing negative societal impacts.In the areas of building heating and cooling and electricpower generation, TES systems can contribute signifi
9、cantly tomeeting societys desire for more efficient and environmen-tally benign energy use and for sustainable development(Khudhair and Farid, 2004). In particular, TES can help makebuildings more sustainable. By reducing energy consumption,for instance, the utilization of TES systems results in two
10、significant environmental benefits: (i) conservation of fossilfuels through efficiency increases and/or fuel substitution, and(ii) reductions in emissions of such pollutants as CO2, SO2,NOx and CFCs.The primary objective of this paper is to investigate howthermal energy storage systems can help make
11、 buildings moresustainable and contribute to local and global sustainabledevelopment. This article also demonstrates how exergy meth-ods provide a useful tool for improving efficiency, cost effec-tiveness, environmental impact and hence sustainability.Previous work is reviewed and research results a
12、re presented,using the context of the earlier work where appropriate.Exergetically Efficient Thermal Energy Storage Systems for Sustainable BuildingsIbrahim Dincer Marc A. RosenMember ASHRAEIbrahim Dincer is a professor of Mechanical Engineering and Marc A. Rosen is a professor and dean of the Facul
13、ty of Engineering andApplied Science, University of Ontario Institute of Technology, Oshawa, Canada.NY-08-0152008, American Society of Heating, Refrigerating and Air-Conditioning Engineers, Inc. (www.ashrae.org). Published in ASHRAE Transactions, Volume 114, Part 1. For personal use only. Additional
14、 reproduction, distribution, or transmission in either print or digital form is not permitted without ASHRAEs prior written permission.ASHRAE Transactions 99THERMAL ENERGY STORAGE SYSTEMSThermal energy storage systems for heating or coolingcapacity are often utilized in applications where the occur-
15、rence of a demand for energy and that of the economicallymost favorable supply of energy are not coincident (Dincerand Rosen, 2002). The storage medium can be located in storages of varioustypes, including tanks, ponds, caverns and underground aqui-fers. Underground thermal energy storage systems ma
16、y bedivided into two groups: Closed storage systems in which a heat transport fluid(water in most cases) is pumped through heat exchang-ers in the ground, andOpen systems where groundwater is pumped out of theground and then injected into the ground using wells(aquifer TES) or in underground caverns
17、.When underground aquifers are used for TES, the storagemedium remains in a single phase during the storing cycle, sothat temperature changes are exhibited in the store as thermalenergy is added or removed. The storage medium can remain in a single phase (so thatonly sensible heat is stored) and/or
18、undergo phase change (sothat energy is stored as latent heat). Sensible TESs (e.g., liquidwater systems) exhibit changes in temperature in the store asheat is added or removed. In latent TESs (e.g., liquid water/icesystems and eutectic salt systems), the storage temperatureremains fixed during the p
19、hase-change portion of the storagecycle. Thermal storages are used in energy conservation, indus-try, commercial building and solar energy systems. Manyapplications exist where thermal storage of heat is used forspace heating, district heating and hot water heating. TESoften facilitates the efficien
20、t utilization of renewable energysources and energy conservation. In many countries, cold ther-mal energy storage is an economically viable technology usedin many thermal systems, particularly building cooling. Insuch applications, inexpensive off-peak electricity is utilizedduring the night to prod
21、uce with chillers a cold medium, whichcan be stored for use in meeting cooling needs during the daywhen electricity is more expensive. Numerous TES applications and studies have beenreported (Dincer and Rosen, 2002; Saito, 2002; Andrepont,2007; Khudhair and Farid, 2004; IEA, 2007). Examples ofunderg
22、round thermal energy storage applications includethose at Scarborough Centre in Toronto, Carleton Universityin Ottawa, the Sussex Hospital in New Brunswick, the PacificAgricultural Centre in Agassiz, B.C., as well as borehole ther-mal energy storage systems in Oshawa, Ontario, StocktonCollege in New
23、 Jersey, US and in Sweden (IEA, 2007).The inhibition of mixing through appropriate temperaturestratification is advantageous in many TES systems. Throughcarefully managing the injection, recovery and holding of heat(or cold) to avoid stratification degradation, better storage-cycle performance can b
24、e achieved, allowing for better ther-mal energy recovery and temperature retention.The benefits of TES include reduced energy costs, initialand maintenance costs, equipment sizes, energy consumptionand pollutant emissions, as well as increased flexibility ofoperation, efficiency and effectiveness of
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