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HEATING VENTILATING AIR CONDITIONING GUIDE 1940
Table XI. Coefficients of Transmission (E/) of Various Types of Flat Roofs Covered with Built-Up Roofing*
TYPICAL CONSTRUCTION
Without Chungs
With Metal Lath
and
Plaster Csiungs*
TYPE OF ROOF DECK
Roof Dec*
(Inchbs)
No.
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HortN<p /fi* *T/UrfOT!.T/X*
Precast Cement Tile
1H
W/OLATIUN/ ROOFlNOj______ /
Concrete
Concrete Concrete
in/l/uUiLfCKtUioonr/ tOOHHC>
Wop/
ROOHFINtlGf*/t CUUH67
Wood
Wood Wood
Wood
1^
IF
4`
iNIUL/fflOft/
RJgpirt 62
/
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irl/iiLAtion/ H0<>F1rt_Ci_
Gypsum Fiber Concrete* (2 in.) on Plasterboard
(H in.) Gypsum Fiber Concrete*
(3 in.) on Plasterboard
(H in.) Gypsum Fiber Concrete*
(2 in.) on Rigid Insula-
lation Board (H in.) Gypsum Fiber Concrete*
(2 in.) on Rigid Insula tion Board (I in.)
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Flat Metal Roofs Coefficient of transmis sion of bare corrugated iron (no roofing) is 1.50 Btu per hour per square foot of projected area per degree Fahrenheit dif ference In temperature, based on an outside wind velocity of 15 mph.______
"Computed from factors marked by * in Table 2.
.
`Nominal thicknesses specified--actual thicknesses used in calculations.
Gypsum fiber concrete--87H Per cent gypsum. 12H per cent wood fiber.
2H 3H 2M 3
110
CHAPTER 5. HEAT TRANSMISSION COEFFICIENTS AND TABLES
Coefficients ore expressed in Btu per hour per square foot per degree Fahrenheit difference in temperature between the air on the two sides, and are based on an outside wind velocity of 15 mph.
WITHOUT CEILING--UNDER SIDE OF ROOF EXPOSED
WITH METAL LATH AND PLASTER CEILINGS*
d 5
ja
d 5
_d M
d
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3
ao 9 a
oa
_ao
9 a
dX T2
d N ; 0 '
9
9
o
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9 3
ho O
o O
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Rigid Insulation (H In.)
d _o _d
5 M
d
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9
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3
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*3
9
*3
"9 '3
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O0
ABCD E F G H I J K LMN0
i.9
c*
1 0 0 p
0.84 0.37 0.24 0.18 0.14 0.22 0.16 0.13 0.43 0,26 0.19 0.15 0.12 0.18 0.14 0.11
0.82 0.37 0,24 0.17 0.14 0.22 0.16 0.13 0.42 0.26 0.19 0.15 0.12 0.18 0.14 0.72 0.34 0.23 0.17 0.13 0.21 0.16 0.12 0.40 0.25 0.18 0.14 0.12 0.17 0.13 0.84 0.33 0.22 0.16 0.13 0.21 0.15 0.12 0.37 0.24 0.18 0.14 0.11 0.17 0.13
0.11
0.11 0.11
0.49 0.28 0.20 0.15 0.12 0.19 6.14 0.12 0.32 0.21 0.16 0.13 0.11 0.15 0.12 OtlO 0.37 0.24 0.18 0.14 0.11 0.17 0.13 0.11 0.26 0.19 0.15 0.12 0.10 0.14 0.11 0.095 0.82 0.22 0.16 0.13 0.11 0.16 0.12 0.10 0.24 0.17 0.14 0.11 0.097 0.13 0.11 0.092 0.23 0.17 0.14 0.11 0.096 0.13 0,11 0.091 0.18 0.14 0.12 0.10 0.087 0.11 0.096 0.082
0.40 0.25 0.18 0.14 0.12 0.17 0.13 0.11 0.27 0.19 0.15 0.12 0.10 0.14 0.12 0:097 0.32 0.22 0.16 0.13 0.11 0.15 0.12 0.10 0.23 0.17 0.14 0.11 0.097 0.13 0.11 0:091 0.26 0.19 0.15 0.12 0.10 0.14 0.11 0.10 0.20 0.16 0.13 0.11 0.09 0.12 -0.10 0.087 0.19 0.15 0.12 0.10 0.09 0.12 0.10 0.08 0.16 0.13 0.11 0.09 0.08 0.10 0.09 0,077
0.95 0.39 0.25 0.18 0.14 0.23 0.17 0.13 0.46 0.27 0.19 0.15 0.12 0.18 0.14 0.11
*These coefficients may be used with sufficient accuracy for wood lath and plaster, or plasterboard and Plaster ceilings. It is assumed that there is an air space between the under aide of the roof deck and the upper side of the ceiling.
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