Document LKbK75oGkKwX5V7L8wOXEkpx7
124
CHAPTER 6
1946 Guide
Table 4. Conductivities (k) and Conductances (C) Used in Calculating Heat Transmission Coefficients (/) in Tables 5 to 18
These constants are expressed in Btu per (hour) (square foot) (Fahrenheit degree temperature difference). Conductivities (k) are Per inch thickness and conductances (C) are for thickness or construction stated.. not per. inch thickness.
MATERIAL
DESCRIPTION
Conductivitt Conductance
( (O
Resistance
Per Inch
For Thickness
Listod
(t)
(u>
AIR SPACES
Vertical, in. or more In-width..---------
1.10 0.46
0.91 2.17
EXTERIOR FINISHES (Frame Walls)
. 12.50
2.27
1.28 1.28
0.08
0.44
0.78 0.78
INSULATING MATERIALS
or animal hair, enclosed or open_________ --
Insulating Board...... :........... ....................
Mineral Wool.--------- ---------
Fiber made born rock, slag or glass-------------
0.27
0.30 0.33 0.27 0.48
--
3.70
3.33 3.03 3170 2.08
____
INTERIOR FINISHES
_Composition Wallboard--------------------- % in. to H in. thick___ : ----...
Gtpsum Board (H in.)---------- --------------Gtpsum Lath (H in.) and Plaster..! Insulating Board 04 in.)-- Insulating Board Lath 04 in.) and
Insulating Board Lath (1 in.) and
Metal Lath and Plaster.......................
Plaster thickness assumed J4 Plaster thickness assumed Yt in.-------------
Wood Lath and Plaster______ --
0.50 3.30
----
3.70 ' 2.4
0.66
0.60.
.0.31 4.40 2.12
t 2J0
2.00 0.30
--
0.27 0.42 1.52
1.67 *
. 3.18 0.23 0.47 0.40
MASONRY MATERIALS
Adobe, assumed 4 in. thick.--
--
Por/TV Cement. Mortar. _____ :----------------- --
3 in. Clat tile (hollow).......... 4 in. Clat tiu (hollow)--------6 in. Clat tils (hollow)--------8 in. Clat tilh (hollow)--------------10 in. Clat tile (hollow)....-- 12 in. Clat tile (hollow)-- 16 in. Clat ms (hollow)---------
3 in. Concrete blocks.--.......-------
8 in. Concrete blocks..........
ii
Sand and gravel aggregate........ ............. ... HoDow, cinder aggregate--------- ----------------HoDow, gravel aggregate ------- .....-- ....
12.Q0
"2io 12.00
12 in. Concrete blocks.......................... 8 in. Concrete blocks----- -----------------
. Gtpsum fiber concrete--............
Hollow, light weight aggregate*-------------.87M cent gypsum and 12)4 per eent
1.66
12.50 12.00
12.50,
.0.89 1.25
' 2^0
1.28 1.00 0.64 0.60 ^ . 0.58 0.40 0.31
1.28 1.00 1.00 0.80 0.60 0.53 0.50 0.47
____ 0.08
0.40 0.08
0.61 0.46
..
0.60 ____
____ . 0.08
0.08 0.08
1.12 0.80
0.43 ____ -
0.78 . 1.00
- 1.57 . 1.67
1.72
2.50 3.23
_
0.78 1.00
1.00 1.25 1.66 1.88 2.00 2.13
.
1.64 2.18 . , ,,
______
"Conductance values for horizontal air spaces depend'on whether the heat flow is upward or downward, but In most cases it is sufficiently-accurate to use the same values for horizontal as for vertical air spaces.
`Expanded slag, burned clay or pumice. '
,,
Heat Transmission Coefficients of Building Materials
125
Table 4. Conductivities (&) and Conductances (C) Used in Calculating Heat Transmission Coefficients (U) in Tables 5 to 18--Concluded
These constants are expressed in Btu Per (hour) (square foot) (Fahrenheit degree temperature difference). Conductivities (k) are Per inch thickness and conductances (C) are for thickness or construction stated,
not per inch thickness.'
MATERIAL
DESCRIPTION
- CONDUCTTVITT OR
Conductance
w (C)
Resistance
Per Inch For Thickness Thickness
lasted -
(t) (hY
ROOFING MATERIALS
Built-up Roofing__ -I-,-,,-,,,.-.............
Wood Sehnoles____ _________ __ SHEATHING
INSULATING BOARD
UV.)
Fra or Yellow Pine (1 in.) Fib, pt.TM nnn.niNn paper
SURFACES
Ordinary non-reflective materials, vertical.... Ordinary non-reflective materials, vertical_
WOODS Fib sheathing (1 in.) building paper and Yellow Pine lap siding.______ Maple or Oak Yellow Ptnb or Fir
io.bo
E:
11
1.15 0.80
- 6.00 6.50 3.53 6.50
20.00 1.28
2.82 0.42 2.56 1.02 0.86
1.65 6.00
' 0.50
po
---
--
057 1.25
0.17 0.1S 0.28 0.15 0.05 0.78
0.35 2.37 0.39 0.98 1.16
0.61 0.17
2.00
transmission U. of the insulated construction may be compared with the corresponding coefficient U without insulation. Attention is called to the necessity of applying the insulating material in accordance with the manufacturer's specification. The engineer must carefully evaluate the economic considerations involved in the selection of an insulating material as adapted to various building constructions. Lack of proper evaluation, or improper installation may lead to unsatisfactory results.
Computed Heat Transmission Coefficients
Computed over-all heat transmission coefficients of many common types of building construction are-given in Tables 5 to 18, inclusive, each coefficient being identified by a serial number except in Table 18. For example, the coefficient V of a brick-veneer, frame wall with wood sheathing and in. of. plaster on gypsum lath is 0.27, (Wall No. 28-C in Table 5) and with 2 in. of blanket or bat insulation .the coefficient would be 0.097 (No. 49-B in Table 6).
Example 1. Calculate the coefficient of heat transmission U of a brick-veneer, frame wall with wood sheathing, building paper, and, V2 in. plaster on % in. gypsum lath, based on a wind exposure of 15 mph. Also calculate the coefficient when 2 in. of bat insulation is added, leaving an air space in the wall, and correcting for framing amounting to 15 per cent'of the. wall area.
Solution: Starting from the exterior, the resistances making up the total heat resistance are (1) exterior surface,' (2) brick-veneer, (3) wood sheathing *56'in. thick and building paper,- (4) air space 3% in.- wide, (5) in. gypsum lath and plaster, (6) interior surface. Then using the values from Table 4 in Equation 4:
-- 4- 1 4- ' 1 "1 1 ,1 ; 1 6.0 _r 2.27 `r 0.86 T 1.10 ^ 2.4 "r 1.65 -
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