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Heating Ventilating Air Conditioning Guide 1938
Table 8. Maximum Capacities of Risers3 in Mbh, and Velocities of Water in Pipes in Inches Per Second for One-Pipe and for Two-Pipe Direct Return Gravity Circulation Systems with a Drop of
35 F Through Each Radiator
Pipe Size (Inches)
Flow
Return
xX
aX
XX
X1
1 1 m
1IiXx
mix IiXx
Equivalent Length op Pipe (Feetc)
1.0 1.5 2.0 3.0 3.5
1st Floor!)
2nd Floor
VeL (In. per 8ec.d)
Mbh Flow Return
Mbh
5
6.4
9 2.3 2.3 IS 3.2 2.0 18 2.5 2.5 SI 3.0 2.0
10.1
1S.8 SO S5.S
S6 3.0 3.0 . 43 n 4.0 2.5 48 3.0 3.0
3rd and 4th Floors
Mbh
6.S
8.0
14-0 17.1 S6.0 34 55
"This table is based on pressure beads of 450, 1800, 3150, and 4500, respectively, for the first, second,
third, and fourth floor radiators, and on friction heads of 200 milinches for the first floor radiators and con
nections, and 700 milinches for all other radiators and their connections. bThe riser branches, the piping which connects the risers to the mains, are to be one size larger than the
risers.
. ,. .
. .,
...
cApproximate length of pipes in feet equivalent to one elbow in friction head. This value vanes with
the velocity. ^Velocities apply to the riser branches.
a 1 in. flow and a 1 in. return is 12.5 Mbh. The former is more nearly the correct size, but since it is difficult to secure a good flow through first floor radiators, the 1 in. flow
and return connection is selected. For the two upper floors, the capacity of a X in. flow
and return connection is 10.5 Mbh, and that size is used.
As explained in the design of the forced circulation system of Fig. 5, the two-pipe direct return system of Fig. 8 will not function correctly unless its four sets of risers are balanced among themselves. This neces sary balancing is accomplished by adding resistances to all risers, except the one farthest from the boiler, equal to the excess boiler pressure heads available for those risers above the boiler pressure head available for the farthest riser. For example, the first set of risers is 60 ft nearer the boiler than the last set. Since the flow and return mains are designed for a friction head of 3 milinches per foot (see Table 7, Column 8), the boiler pressure head available for the first set of risers is 360 milinches in excess
Table 9. Maximum Capacities of Radiator Connections in Mbh, for One-Pipe and for Two-Pipe Direct Return Gravity Circulation Systems with
a Temperature Drop of 35 F Through Each Radiator
Pipe Size
Flow
Return
Equivalent Length op Pipe (Feet)
1st Floor
Mbh
2nd, 3rd, and 4th Floors
Mbh
X X
X X
1
r iM
X X X
1
1
IX IX
1.0
1.5
2.0
3.0
4.1 5.S 7.0
9.1 1S.5
17.6
SS.S
6.9 7.6
10.5 13.0
17.8 SS.S SS.S
^Approximate length of pipe in feet equivalent to one elbow in friction head. This value varies with the velocity.
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Chapter 17. Hot Water Heating Systems and Piping
of that available for the fourth set. The velocity in the riser branch is 3 in. per second (see Table 8) and, therefore, according to Table 6, an 0.65 in. orifice in a 134 in. union should be used. This will provide a resistance of about 420 milinches. In the same manner it is found that for the second set of risers a resistance of 240 milinches is required and that an 0.70 in. orifice in a 1J4 in. union will provide a resistance of 285 milinches. For the third set of risers, a resistance of 120 milinches is required and an 0.60 in. orifice in a 1 in. union will provide sufficient resistance.
EXPANSION TANKS
When water at ordinary temperatures is heated or cooled, its volume is increased or decreased. This variation in the volume of the water in a heating system is generally provided for by means of an expansion tank
Fig. 9. An Open Expansion Tank.
Fig. 10. A Closed Expansion Tank
into which the water can flow from the system during the heating-up periods and from which it can flow back into the system during the cooling-down 'periods.
The expansion tank may be open or closed. In an open expansion tank (Fig. 9), the water is subjected to atmospheric pressure and can expand freely without a material increase in pressure. In a closed expansion tank (Fig. 10), the water is subjected to the pressure of the compressed air within the tank, .and as the-water expands, the volume of the air in the tank is decreased and its pressure increased.
The open expansion tank must be placed at a sufficient elevation above the highest radiator to prevent boiling when the water in that radiator is at the highest temperature to which it is to be heated. For example, if the water is to be heated to 225 F on extremely cold days, the absolute pressure on the water in the highest radiator must be at least 19 lb per square inch. This pressure will be secured if the open expansion tank is located 15 ft above the highest radiator. If a closed expansion tank is used and is located 30 ft below the highest radiator, an absolute pressure
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