ASHRAE CH-06-6-2006 Symposium on Thermal Modeling of Phase-Change Materials in Building Envelopes Old Problem New Developments《热模拟相变材料在建筑围护结构研讨会 老问题 新的发展》.pdf
《ASHRAE CH-06-6-2006 Symposium on Thermal Modeling of Phase-Change Materials in Building Envelopes Old Problem New Developments《热模拟相变材料在建筑围护结构研讨会 老问题 新的发展》.pdf》由会员分享,可在线阅读,更多相关《ASHRAE CH-06-6-2006 Symposium on Thermal Modeling of Phase-Change Materials in Building Envelopes Old Problem New Developments《热模拟相变材料在建筑围护结构研讨会 老问题 新的发展》.pdf(39页珍藏版)》请在麦多课文档分享上搜索。
1、CH-06-6 Symposium on Thermal Modeling of Phase-Change Materials in Building Envelopes: Old Problem, New Developments CH-06-6-1 Use of Phase-Change Materials in Solar Domestic Hot Water Tanks Luisa F. Cabeza, Manuel Ibez, Cristian Sol, Joan Roca, Mique1 Nogus, Stefan Hiebler, and Harald Mehling 495 C
2、H-06-6-2 Diurnal Load Reduction Through Phase-Change Building Components Kelly Kissock and Sutrisna Limas 509 CH-06-6-3 Phase-Change Material Modeling within Whole Building Dynamic Simulation Dariusz Heim. . 5 18 CH-06-6-4 Research on Thermal Storage Using Rock Wool Phase-Change Material Ceiling Boa
3、rd Takeshi Kondo and Tadahiko Ibamoto . 526 CH-06-6-1 Use of Phase-Change Materials in Solar Domestic Hot Water Tanks Luisa F. Cabeza, PhD Manuel Ibiez, PhD Cristian Sol Joan Roca Miquel Nogus, PhD ABSTRACT Storage of heat is seen as a major issue for the large-scale and long-term development of sol
4、ar energy for house heating and cooling in all climates. Most of the storage systems avail- able on the market use water as the storage medium. Enhanc- ing storage performance is necessary in order to increase the performance of mostsystems. The idea studied here was to add a phase-change material (
5、PCM) module at the top ofu hot water storage tank with stratijcation. The advantages of the stratijication still remain in this new system, but the addition of a PCM module would give higher density in the top layer: For this work, an experimental solar pilot plant was constructed to test the PCMbeh
6、avior in real conditions, which could work continuously with the solar system or could also work with un electrical heater: The PCM module geometry adopted was to use several cylinders at the top of the water tank. Several experiments with two, fouc andsix PCMmodules were carried out in the real ins
7、tallation. A granular PCM- graphite compound of about 90% sodium acetate trihydrate and IO%graphite was chosen as the PCMfor the experiments presented here. This paper also describes the modeling ofthis new tech- nology. A new TRNSYS component based in the already exist- ing TYPE 60 was developed-TY
8、PE 60PCM. This new component wasjrst tuned with experimental results and after- wards validated with further experiments. Concordance between experimental und simulated data was very good. Since the new TRNSYS component was developed to simulate full solar systems, comparison of experimental results
9、 from a pilot plant solar system with simulations was performed and conjrmed that the TYPE 6OPCM is a powerful tool for eval- uating the performance of PCM modules in water tanks. Stefan Hiebler Harald Mehling, PhD INTRODUCTION Thermal energy storage has recently become of major interest due to the
10、concern about use of renewable energies, such as thermal solar energy, and waste heat. The mismatch between energy demand and energy availability can only be overcome by the use of an energy reservoir. The use of phase-change materials (PCMs) such as water in energy storage has the advantage of high
11、 energy storage vs. sensible heat storage. Another advantage of latent heat storage is its isothermal behavior during the charging and discharging process (Lane 1983). Thermally stratified storage tank systems are an effective technique widely used in energy conservation and load management applicat
12、ions. They are commonly used in solar energy systems but also have other applications such as waste heat reuse. If water of different temperatures is contained in a tank, thermal stratification arises because the temperature variation gives rise to a density variation in the water. The stratificatio
13、n phenomenon is employed to improve the e%- ciency of storage tanks as heat at an intermediate temperature (not high enough to heat the top layer) can still be used to heat the lower, colder layers (Wildin and Truman 1989; Wildin 1989; Wildin 1990; Nelson et al. 1999a; Nelson et al. 1999b). Stores f
14、or heat with different temperatures can also be designed using PCMs. In this case, two or more PCM modules with different melting temperatures would have to be used. The loading can be done separately in each module, with the right temperature level. The unloading of the storage can be carried out w
15、ith a pipe going through the modules (Figure 1). Luisa F. Cabeza is an associate professor, Manuel Ibiez is a lecturer, Cristian Sol is a student, and Joan Roca and Miquel Nogus are lecturers at the University of Lleida, Spain. Stefan Hiebler is a student at the Technical University of Munich and re
16、searcher at ZAE Bayern, Garching, Germany, and Harald Mehling is a researcher at ZAE Bayern. 02006 ASHRAE. 495 water based: PCM based: m unloading t I top layer with potential improvement Hot layer - I- - Transition layer Cold ayer - Figure 1 Diferent concepts for energy storage in tanks. From left
17、to right: hot water heut store with strutijcation, PCM store, hot water heut store with strutijcation and PCM. The advantage of this type of heat store is the good use of low-temperature heat andor waste heat. PCM is good for high energy density if there is a small temperature change, because then t
18、he latent heat is much larger than the sensible heat. On the other hand, the temperature change in the top layer of a hot water heat store with stratification is usually small, as it is held as close as possible at or above the temperature for usage. The idea presented here is to add a PCM module at
19、 the top of a hot water storage tank with stratification. The advantages of the stratification still remain in this new system, but the addition of a PCM module would give a much higher storage density in the top layer (Figure i). The advantages of such a system become obvious in the following examp
20、le. A PCM module with 50% of the radius of the store and 25% of its height (PCM is 1/16 or 6% of total volume) is inserted at the top of the storage tank. Therefore, in the top layer (25% of the store height), one fourth of the volume is PCM and three fourths are water. Let us assume the PCM used ha
21、s an enthalpy of 200 kJ/kg. The latent heat in the PCM module can then heat the water in the top layer, which has a volume three times that of the PCM by 25C. For the stor- age system, three advantages can therefore be identified immediately: 1. 2. 3. The energy density of the storage tank is increa
22、sed. A heat loss of 25C in the top layer can be compensated by the latent heat in the PCM module. It is possible to reheat the transition layer after partial unloading. The work presented here is a thorough study of this appli- cation of PCMs. The study has been conducted experimentally and by model
23、ing, taking into consideration many of the parameters that affect PCM applications. EXPERIMENTS Description of the Laboratory Installation To carry out the first experiments, a cylindrical vertical tank (Figure 2) was built at ZAE Bayern. The tank had a diam- eter of 20 cm and a height of.120 cm. Th
24、e material chosen for the construction was methacrylate. This had two advantages: the interior of the tank could be observed and the heat transfer through the container wall was minimized. For the experiments, the tank was insulated with two different insulation materials giving heat loss coefficien
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