Solar Water Heating System with Absorption Heat Transformer for Annual Continuous Water Heating

被引:0
|
作者
Lopez-Perez, Luis Adrian [1 ]
Torres-Diaz, Tabai [1 ]
Grajales, Sandro Guadalupe Perez [1 ]
Prieto, Jose Jasson Flores [2 ]
Romero, David Juarez [1 ]
Perez, Jose Alfredo Hernandez [1 ]
Huicochea, Armando [1 ]
机构
[1] Univ Autonoma Estado Morelos, Ctr Invest Ingn & Ciencias Aplicadas, Ave Univ 1001, Cuernavaca 62209, Morelos, Mexico
[2] Tecnol Nacl Mexico, Ctr Nacl Invest & Desarrollo Tecnol, Interior Internado Palmira S-N, Cuernavaca 62490, Morelos, Mexico
关键词
absorption heat transformer; artificial neural network; industrial processes; renewable energy; solar water heating systems; solar energy; NEURAL-NETWORK; PERFORMANCE ANALYSIS; ENERGY; OPTIMIZATION;
D O I
10.3390/pr12081650
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
We show the performance of solar heating by coupling a Solar Water Heating System (SWHS) with an Absorption Heat Transformer (AHT) for annual continuous water heating. Solar Fraction (SF), Solar Heat Gain (SHG), and Auxiliary Heat (Qaux) were meticulously assessed for three Mexican cities located in the most characteristic climates (Saltillo, Toluca, and Tapachula). This rigorous assessment process ensures the reliability and accuracy of our findings. The potential reduction in net solar collector area (Ac) and storage tank volume (Vt) can be seen by comparing its annual performance to that of a conventional SWHS. Both configurations were designed to deliver the same hot water amount (0.019 kg/s, 1693.4 L/day, heating from 15.8 to 94.4 degrees C) and simulated using TRNSYS software version 16.01 concerning combinational systems. The results showed that SWHS-AHT achieved superior performance in solar water heating, achieving a higher SF (up to 99.6%) and SHG (up to 1352 kWh/m2-year) compared to the conventional SWHS. On the other hand, the SWHS-AHT achieved similar performance to a conventional SWHS with up to 60% less Ac. For instance, in Tapachula, a SWHS-AHT with an Ac of 150 m2 and a Vt of 18 m3 matched the performance of a SWHS with an Ac of 375 m2 and a Vt of 15 m3. Notably, both systems required the same Qaux. Thus, the Qaux requirement shows that SWHS-AHT is promising for industrial applications in Mexico, offering improved performance and a reduced footprint.
引用
收藏
页数:23
相关论文
共 50 条
  • [21] Solar water chiller-cum-water heating system
    Rane, MV
    Agarwal, A
    PROCEEDINGS OF THE INTERNATIONAL SORPTION HEAT PUMP CONFERENCE, 2002, : 479 - 483
  • [22] SOLAR WATER HEATING SYSTEM EXPERIMENTAL APPARATUS
    Abu-Mulaweh, Hosni I.
    2012 ASEE ANNUAL CONFERENCE, 2012,
  • [23] Solar hot-water heating system
    ASHRAE J, 2009, 9 (44-53):
  • [24] Implementing Slab Solar Water Heating System
    Raveendran, S. K.
    Shen, C. Q.
    PHYSICS AND MATERIALS SYMPOSIUM: INTERNATIONAL CONFERENCE ON APPLIED SCIENCES AND INDUSTRIAL TECHNOLOGY (ICASIT2015), 2015, 1674
  • [25] Solar water heating system for a lunar base
    Somers, R.E.
    Haynes, R.D.
    NASA Conference Publication, 1992, 2 (3166):
  • [26] Solarthermie in combination with heat pumps: Influence of solar hot water facilities, solar heating support, and solar heating of the prime source on the annual work number of heat pumps
    Hafner, B.
    VDI Berichte, 2007, (1999): : 67 - 70
  • [27] Optimization of the Parameters of Solar Water Heating System
    Iljins, U.
    Ziemelis, I.
    Putans, U.
    Skele, A.
    Navickas, I.
    ENVIRONMENT, TECHNOLOGY, RESOURCES, PROCEEDINGS, 2003, : 353 - 358
  • [28] FORCED CIRCULATION SYSTEM FOR SOLAR WATER HEATING
    PARKER, GJ
    SOLAR ENERGY, 1976, 18 (05) : 475 - 479
  • [29] A hybrid solar desalination and water heating system
    Voropoulos, K
    Mathioulakis, E
    Belessiotis, V
    DESALINATION, 2004, 164 (02) : 189 - 195
  • [30] Simulation of a solar domestic water heating system
    Zeghib, I.
    Chaker, A.
    IMPACT OF INTEGRATED CLEAN ENERGY ON THE FUTURE OF THE MEDITERRANEAN ENVIRONMENT, 2011, 6 : 292 - 301