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American Society of Heating and Ventilating Engineers Guide, 1929
Fig. 8. Friction Heads, in Pipes and Elbows, for a 20 deg. Temperature Difference of the Water in the Flow and Return Lines
per elbow. Incidentally, we note also that the velocity will be about '5 in. per second.
The total friction is, therefore,
22 X 18 = 396 9 X 35 = 315 711 milinches. 126
Chapter IV--Hot Water Heating Systems and Piping
As this is slightly more than-the available pressure head of 630 milinches, a 1-in. pipe is a trifle too small. However, the difference between the calculated friction head and the available pressure head is so small that the 1-in. pipe can safely be used.
If a 134-in. pipe were used, the pressure head would be
22 X 5 = 110 9 X 11 -- 99 209 milinches, or less
than one-third of the available pressure head. Consequently, a pipe would be entirely too large.
. The calculation shows how easily friction head calculations can be made.' . For more complicated installations, the calculations are more complicated, but in all cases, they are fairly simple. More detailed instructions than can be given here for such calculations may be found in textBooks and in magazine articles.
EMPIRICAL RULES
A veiy great demand exists for empirical rules or tables by means of which pipe sizes for hot-water heating systems can be determined accord ing to the radiation which the pipe is to serve and without the necessity of friction head and pressure head calculations.
It is not possible to prepare such tables or rules which would have any degree of accuracy.
For examples. in the elementary heating system shown in Fig. 5, a
1-in. pipe is practically the correct size. If the radiator were placed about
10 or 14 ft. above the heater instead of 7 ft., a 1-in. pipe would be entirely
too large; or, if the radiator were placed at a considerably greater distance
from the heater so that the number of elbows and the length of the pipe
of the circuit were increased materially, a 1-in. pipe would be too small.
So in this simple case, under different circumstances, a %-in. pipe, a
1-in. pipe, or a 1
pipe would be the correct size to select. In the
10 types of pipe systems shown in Fig. 4, it is quite evident that no
empirical rule could be devised which would correctly give the pipe sizes
to be used in every one of the ten cases shown there.
There are a number of empirical rules, however, contained in the catalogue -data of the various manufacturers of hot-water heating apparatus which may be used with success if properly applied to such ordinary problems as these manufacturers have found them applicable to. Where the runs are not long and the various branches of the system can be.fairly well equalized as to length of run and amounts of radiation, these practical rules, when applied to residences and other relatively small buildings of ordinary ceiling lengths, prove quite successful.
There are also a number of practical suggestions, to be found in these data, as to piping details and different kinds of connections.
GRAVITY HOT WATER. HEATING1 FOR SMALLER INSTALLATIONS
In the average small hot-water heating system such as is used for bungalows, cottages and even the modest sized home or residence, it is
`Compiled by H. L. Alt, Philadelphia.
127
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