Document jKVB2gXKkjbNE9nQJ21054g2
206
CHAPTER 10
1955 Guide
sure curve, thereby confirming that the critical plane for condensation was correctly assumed.
With the vapor pressures thus established, the relative humidities may be found, by reference to the saturation vapor pressures. The permeances originally assigned to the various elements may then be re-examined in the light of the service conditions of temperatures and relative humidities indicated, and the analysis repeated, it necessary, using more appropriate permeance values.
In a more detailed analysis, individual values might be assigned to the elements forming the outer portion of the wall, which is here dealt with as a composite, homo geneous element.
The transmission of water vapor as outlined is based on the assumption of a diffusion process. The possibility of vapor being transferred as part of a moving air stream has thus far been ignored, except in Example 1 in which it is implied that the air circulation on either side of the wall will be sufficient to eliminate surface film resistances to vapor flow. Differences in total pressure of the air may result in a transfer of vapor with air, aug menting and at times over-riding the effects of the flow produced by vapor pressure gradients, alone. This can be particularly important in the trans fer of vapor through cracks and pinholes or through air-permeable building constructions.
This means of vapor transfer is similar to that of transfer of heat by air leakage in and through building constructions, requiring for purposes of calculation information on the nature and amount of the' air leakage. It will seldom be important in constructions without air spaces and having parged or plastered surfaces. It may, however, be an important means of vapor transfer through constructions lacking in air tightness, and may contribute to condensation difficulties, since the mechanism of condensa tion is not dependent upon the way in which the vapor is transferred.
PERMEANCE AND TESTING
The simpliest method of finding the permeance of a specimen is to seal
it over the top of a cup containing desiccant or water, placing it in a con
trolled atmosphere, and weighing it periodically. The steady rate of weight gain or loss is normally the water vapor transfer. When the cup
contains a desiccant the procedure is called the dry-cup method and when the cup contains water, the wet-cup method. Usually the outside atmos
phere is held at 50 percent relative humidity, thus providing, in either method, substantially the same difference of vapor pressure, but the
results obtained by the two methods on the same specimens are likely to
be much different, the wet cup method producing the higher values. The relationship between these values can best be understood by reference to Fig. 3, which shows a typical variation of spot permeability with relative
humidity at one particular temperature (isothermal conditions) for a
material such as wood. The vapor permeability is shown to vary only moderately at low humidities, but to increase at an increasing rate as higher humidities are reached. The dry-cup test of this material carried
out with 0 percent relative humidity one side and 50 percent on the other, will experience throughout its thickness, because of the variation in relative
humidity, a variation in spot permeability. The average permeability
f' I rfp
p, is by definition (Equation 3), given by -------- , and since at a fixed
Pi Pt
,
temperature there is a linear relationship between vapor pressure and
relative humidity, this expression can be seen to correspond to the mean
height of the area under the spot permeability curve, between the appro
Moisture in Building Construction
207
Table 1. Permeance and Permeability op Materials to Water. Vapor
Material
Aib (still) Insulation
Cellular glass Corkboard Corkboard Structural Insulating Board (vegetable, uncoated) Mineral Wool (unprotected)
Wood Sugar Pine Plywood (Exterior type 3 ply D.F.), Vi in. Plywood (Interior type 3 ply D.F.), H in.
Masonbt Concrete (1:2:4 Mix) Concrete (8* cored block wall, limestone agrgt.) Brick wall--with mortar--4 in. Tile wall--with mortar--4 in.
Interior Finish Plaster on wood lath Plaster on metal lath-- Plaster on plain gypsum lath (with studs) Gypsum wall board--plain--H in.. Insulating wall board (uncoated)--V4 in.
Paint--2 coats Asphaltic paint on plywood Aluminum in varnish on wood Enamels, brushed on smooth plaster Pnmert or Sealers on insulating wall board Various Primers -f- 1 coat flat paint on plaster ht paint (alone) on insulating wall board Water Emulsions on insulating wall board
* wl-MT--Exterior, 3 coats White lead A oil prepared paint on wood siding White lead-sine oxide A linseed oil on wood
. Per
meance Perm
Permea
bility Perm-inch
% RHi-RHs.
120.
0.0 2.1-2.6
9.5 20-60 116.
92-73
75-0 100-45 40-x 100-30
0.72 1.86
0.4-5.4
various .50-
50-
- 2.4 0.8 0.12
3.3 100-45 79-68 50-x
50-x
11. 15. 20. 50. 50-90
0.4 0.3-0.5 0.5-1.5 0.9-2.1 1.6-3.
4. 30.-85.
0.3-1.0 i 0.9
100-30 40-x 40-85 50-20 40-x
100-30 95-0 92-0 40-x 40-x 40-x 40-x
60-0 95-0
aBhS-a-- S
b
d d. . w t w
tv ' ' 4 4
w t t t
w t t v t
w d
b
t t t t
d d
Ret.I
3
4 9 7 6
: 3 11 11
9 3 8 8
6 7 3 13 7
6 10 3 7 7 7 7
13 10
Lb. per 500 sqft
Building Papers and Felts
Duplex sheet, asphalt laminae, aluminum /oil 01 side
Saturated arid coated felt heavy roD roofing Kraft and asphalt laminae, Reinforced 30-12O-3C Insulstion back up, asphaJt-eat., one side gloesi Asphalt-saturated and coated sheathing paper Asphalt-saturated sheathing paper ]5-pouad asphalt felt Impound tar felt Bingle sheet Knit, double infused
43
326 34 31 43 22 70 70 16.
Permeance-Perms
dry cup
wet cup
0.002
0.05 0.3 0.4 0.3 3.3 1.0 4.0 30.8
0.176
01..284
0.6-4.2 0.6 20.2 6.6 18.2 41.9
12
12 12 12 12 12 12 12 12
--A-.j/wuu ig a guide only, and does not insure permeance.
average oJf ;fodu--r dmreythcoudps;. w--wet cup; t--two temperatures; b--special cell; v--air velocity both sides; of renc^AT No. 7 also includes Bulletins 22 and 25 of the Engineering Experiment Station, University Sf,,te Jgjj0*0* TM* *3 includes data to be published by the Engineering Experiment Station, The Pennsylvania
P,nat relative humidity limits. The average permeability as found for fnae dry-cup conditions should therefore have the value pi. Similarly
th i we^cuP test between 50 percent and 100 percent relative humidity, e value should be p?. It is not uncommon for these values for wood and d-fiber materials to be in the ratio of 1 to 3, or higher. (See. Table 1.)
tic^j16 average permeability p for any other relative humidities at a par-
cular temperature is given by the mean height of the area under the rve f spot permeability for the material at that temperature, between