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    Modeling Phase Change Materials With Conduction Transfer Functions for Passive Solar Applications

    Source: Journal of Solar Energy Engineering:;2006:;volume( 128 ):;issue: 001::page 58
    Author:
    Jason P. Barbour
    ,
    Douglas C. Hittle
    DOI: 10.1115/1.2000977
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: The use of passive solar design in our homes and buildings is one way to offset the ever-increasing dependence on fossil fuels and the resulting pollution to our air, our land, and our waters. A well-designed sunroom has the potential to reduce the annual heating loads by one-third or more. By integrating phase change materials (PCMs) into building elements, such as floor tile and wallboard, the benefits of the sunroom can be further enhanced by providing enhanced energy storage. To maximize benefits from PCMs, an engineering analysis tool is needed to provide insight into the most efficient use of this developing technology. Thus far, modeling of the PCMs has been restricted to finite difference and finite element methods, which are not well suited to inclusion in a comprehensive annual building simulation program such as BLAST or EnergyPlus . Conduction transfer functions (CTFs) have long been used to predict transient heat conduction in such programs. Phase changes often do not occur at a single temperature, but do so over a range of temperatures. The phase change energy can be represented by an elevated heat capacity over the temperature range during which the phase change occurs. By calculating an extra set(s) of CTFs for the phase change properties, the CTF method can be extended to include the energy of phase transitions by switching between the two (or more) sets of CTFs. This method can be used to accurately predict the internal and external temperatures of PCM-containing building elements during transient heat conduction. The amount of energy storage and release during a phase transition can also be modeled with this method, although there may be some degree of inaccuracy due to switching between two or more sets of CTFs. CTFs have the potential to provide an efficient method of modeling PCMs in annual building simulation programs, but more work is needed to reduce errors associated with their use.
    keyword(s): Temperature , Heat conduction , Heat capacity , Phase change materials , Modeling , Tiles , Simulation , Solar energy , Transfer functions , Latent heat AND Wallboard ,
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      Modeling Phase Change Materials With Conduction Transfer Functions for Passive Solar Applications

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    https://yetl.yabesh.ir/yetl1/handle/yetl/134649
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    • Journal of Solar Energy Engineering

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    contributor authorJason P. Barbour
    contributor authorDouglas C. Hittle
    date accessioned2017-05-09T00:21:36Z
    date available2017-05-09T00:21:36Z
    date copyrightFebruary, 2006
    date issued2006
    identifier issn0199-6231
    identifier otherJSEEDO-28386#58_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/134649
    description abstractThe use of passive solar design in our homes and buildings is one way to offset the ever-increasing dependence on fossil fuels and the resulting pollution to our air, our land, and our waters. A well-designed sunroom has the potential to reduce the annual heating loads by one-third or more. By integrating phase change materials (PCMs) into building elements, such as floor tile and wallboard, the benefits of the sunroom can be further enhanced by providing enhanced energy storage. To maximize benefits from PCMs, an engineering analysis tool is needed to provide insight into the most efficient use of this developing technology. Thus far, modeling of the PCMs has been restricted to finite difference and finite element methods, which are not well suited to inclusion in a comprehensive annual building simulation program such as BLAST or EnergyPlus . Conduction transfer functions (CTFs) have long been used to predict transient heat conduction in such programs. Phase changes often do not occur at a single temperature, but do so over a range of temperatures. The phase change energy can be represented by an elevated heat capacity over the temperature range during which the phase change occurs. By calculating an extra set(s) of CTFs for the phase change properties, the CTF method can be extended to include the energy of phase transitions by switching between the two (or more) sets of CTFs. This method can be used to accurately predict the internal and external temperatures of PCM-containing building elements during transient heat conduction. The amount of energy storage and release during a phase transition can also be modeled with this method, although there may be some degree of inaccuracy due to switching between two or more sets of CTFs. CTFs have the potential to provide an efficient method of modeling PCMs in annual building simulation programs, but more work is needed to reduce errors associated with their use.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleModeling Phase Change Materials With Conduction Transfer Functions for Passive Solar Applications
    typeJournal Paper
    journal volume128
    journal issue1
    journal titleJournal of Solar Energy Engineering
    identifier doi10.1115/1.2000977
    journal fristpage58
    journal lastpage68
    identifier eissn1528-8986
    keywordsTemperature
    keywordsHeat conduction
    keywordsHeat capacity
    keywordsPhase change materials
    keywordsModeling
    keywordsTiles
    keywordsSimulation
    keywordsSolar energy
    keywordsTransfer functions
    keywordsLatent heat AND Wallboard
    treeJournal of Solar Energy Engineering:;2006:;volume( 128 ):;issue: 001
    contenttypeFulltext
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