ASHRAE OR-10-018-2010 ASHRAE Standard 90 1 Metal Building U-Factors-Part 2 A Systems Based Approach for Predicting the Thermal Performance of Single Layer Fiberglass Batt Insulatio.pdf
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1、2010 ASHRAE 169ABSTRACTThe paper represents the second part of a comprehensivestudy on modeling heat transfer in metal building roof insula-tion assemblies containing fiberglass insulation. Part 1described the development and experimental validation of acomprehensive three-dimensional mathematical m
2、odel forheat transfer (and air flow where applicable) in metal buildingroof insulation assemblies. The model was used to calculateU-factors for several standing seam roof (SSR) and through-fastened roof (TFR) assemblies assuming the insulationdrapes between the purlins to be parabolic. The second pa
3、rt ofthe work used the results from the model described in part 1 todevelop a relatively simple approach to predict the overall heattransfer coefficient (U-factor) of insulated metal building roofinsulation assemblies. It is shown that the U-factors obtainedusing the numerical model may be correlate
4、d, to a fairly highdegree ( R2 = 0.998), to an overall or system thermal resistanceparameter, Rinsul-sysas shown below.1/U = 0.8672 Rinsul-sys + 1.132In the above equation, U is in Btu/ft2hF and R is inft2hF/Btu. 1 Btu/ft2hF = 5.6782 W/m2K and 1ft2hF/Btu = 0.17611 m2K/W.The parameter Rinsul-sysis ca
5、lculated by combining threethermal resistances operating in parallel. Two of these resis-tances of equal value correspond to the insulation drapes oneither side of the purlin and the one in the middle representsthe thermal resistance of insulation over the purlin. An analyt-ical expression for the R
6、-value of the parabolic insulationdrape is derived. The approach developed in this paper greatlyenhances our ability to predict U-factors for metal buildingroof assemblies.INTRODUCTIONDuring the late 1990s, the American Society of Heating,Refrigeration and Air-Conditioning Engineers (ASHRAE)Standing
7、 Standard Project Committee (SSPC) 90.1 EnvelopeSubcommittee incorporated specific maximum allowable U-factors (the overall heat transfer coefficients) for metal build-ing roofs and walls into ANSI/ASHRAE/IESNA Standard90.1-1999. Recently ASHRAE and other industry organiza-tions have recognized that
8、 Standard 90.1 should be revised andupdated to account for a more accurate understanding of theinstallation of insulation in metal building roof and wallassemblies. A comprehensive mathematical modeling basedstudy of heat transfer in metal building roof insulation assem-blies containing fiberglass i
9、nsulation was undertaken to facil-itate the revision of U-factors in the Standard 90.1. The firstpart of the study, summarized in a previous paper (Choudharyet al. 2010), involved the development and validation of athree-dimensional mathematical model for heat transfer (andair flow where applicable)
10、 in metal building roof insulationassemblies.In the second part of the study, reported here, the validatedmodel was used to calculate the U-factors for several standingseam roof (SSR) and through-fastened roof (TFR) insulationassemblies. In these modeling studies, the shape of the fiber-glass insula
11、tion drape between two consecutive purlins wasassumed to be parabolic. The assumption of the parabolicshape was based on measurements of the drape in prototypesof several metal building roof insulation assemblies (Chris-tianson 2010). For the SSR, 30 assemblies were modeled; 15each for a 1.375 in. (
12、0.0349 m) tall clip and a 1.75 in. (0.0445m) tall clip. The 15 cases corresponded to five different insu-lation types (R-10, R-11, R-13, R-16, and R-19), each at threeASHRAE Standard 90.1 Metal Building U-FactorsPart 2: A Systems Based Approach for Predicting the Thermal Performance of Single Layer
13、Fiberglass Batt Insulation AssembliesM.K. Choudhary, PhD, PE C.P. KasprzakAssociate Member ASHRAEM.K. Choudhary is a member of senior technical staff at Owens Corning Science four for R-19 and 1 each for R-16, R-13, R-11,and R-10. The U-factors for the 38 cases are summarized inthis paper.One may us
14、e the three-dimensional numerical heat transfermodel described (Choudhary et al. 2010) to calculate U-factorsfor each of the cases included in the Standard 90.1. This,however, will be time consuming. Also, modeling tools andcapabilities may not be readily available to many people andorganizations wi
15、th interest in understanding and specifyingthermal performance of the metal building insulation assem-blies. Therefore, and at the request of ASHRAEs 90.1 Enve-lope Subcommittee, an approach was developed to calculate theU-factor from an overall or system thermal resistance parame-ter, Rinsul-sys, t
16、hat combined thermal resistance of the insulationdrapes between the purlins with the thermal resistance of theinsulation above the purlin. The paper presents a derivation foran analytical expression for the thermal resistance (the R-value)of the parabolic insulation drape, a key part of Rinsul-sys.T
17、he model calculated 38 U-factors for the various roofinsulation assemblies mentioned earlier were found to corre-late highly (R2 = 0.998) with the overall or system thermalresistance parameter, Rinsul-sys. Subsequently, four moreassemblies were modeled to correspond to Rinsul-sysvaluesconsiderably o
18、utside the range of the earlier 38 cases. Thecorrelation equation was found to work very well in predictingthe U-factor with the worst discrepancy between the valuesfrom the model and the correlation equation being 15%.The U-factor estimation approach outlined here is quitesimple and greatly expands
19、 our ability to predict U-factors formetal building roof assemblies. The correlation derived here isfor cases where several design parameters (e.g., spacingbetween the purlins and the dimensions of the purlins) were keptinvariant. It would be relatively straightforward to extend thepresent approach
20、to include other design parameters of interest.In the following, we will first derive an expression for theoverall or system thermal resistance parameter, Rinsul-sys, thensummarize the modeling results on U-factors for several roofinsulation assemblies, and finally correlate the U-values calcu-lated
21、 by the numerical model to Rinsul-sys. The correlation basedapproach described below has been adopted by the 90.1 Enve-lope Subcommittee for calculating the U-factors for the singlelayer fiberglass insulation assemblies. We have followed therecommendation from the 90.1 Envelope Subcommittee(McBride
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