Document zzZ9D044NM0dnDx5my4M0611z
410
CHAPTER 29
1959 Guide
TEMPERATURE -F
fig. 3.... Relation of Saturation Pressure and Enthalpy to Water Temperature
by the system design and elevation characteristics to values between 300 F to 325 F. Most systems are being designed with the system circulating pump in the supply line and with a steam drum for pressurization, expansion, and tem perature control. In this type of system, the temperature of the water from the steam drum cannot exceed the tern-
Table 1 ....Properties of Water (212 F to 400 F)
Teaipefvtw* F
Deadfy Ib/OiFt
Speatic Kmt
6h/(U>HF)
Tofo/ Hatit Abo** 32 F
Bta/Lfa* Bhi/Cu Ft
212
14.70
59.81
1.007 180.07 10,770
220
17.19
59.63
1.009 188.13 11,216
230
20.78
59.38
1.010 198.23 11,770
240
24.97
59.10
1.012 208.34 12,313
250
29.83
58.82
1.015 218.48 12,851
260
35.43
58.51
1.017 228.64 13,378
270
41.86 58.24
1.020 238.84 13,910
280
49.20 57.94
1.022 249.06 14,430
290
57.56
57.64
1.025 259.31 14,947
300
67.01
57.31
1.032 269.59 15,450
310
77.68
56.98
1.035 279.92 15,950
320
89.66
56.66
,1.040 290.28 16,437
330
103.06
56.31
1.042 300.68 16,931
340
118.01
55.96
1.047 311.13 17,409
350
134.63
55.59
1.052 321.63 17,879
360
153.04
55.22 1.057 332.18 18,343
370
173.37
54.85
1.062 342.79 18,802
380
195.77
54.47
1.070 353.45 19,252
390
220.37
54.05
1.077 364.17 19,681
400
247.31
53.65
1.085 374.97 20,117
* Reprinted by permunion from rtnuodfuamtc PreptrtUa ofShorn, by J. H. KwMab mad P. G. Key** pubiizbed by John Wiley *ad Son*. Inc.. ISM oditioo.
perature of the steam in the drum which corresponds to its pressure at saturation. The point of maximum pressure is at the discharge of the circulating pump. If this pressure is to be maintained below 125 prig, the pressure in the drum, corresponding to the water temperature, cannot exceed 125 psig minus the sum of the pump head and the pressure head due to the difference in elevation between the drum and the circulating pump.
Elevation effects and the' pressures required to prevent the flashing of water to steam in the supply system can also
High-Temperature Water Systems
411
limit the maximum water temperature that may be used and must, therefore, be studied in evaluating the tempera ture-pressure relationships of the system.
The properties of water which govern the features of the design are:
1. Temperature vs pressure at saturation (see Fig. 3). 2. Density or specific volume (t>) vs temperature. .3. Enthalpy or sensible heat (ht) vs temperature. 4. Viscosity vs temperature.
The relation of temperature and pressure, specific vol ume, and enthalpy are all discussed in Chapter.3. Data for the normal temperature-pressure ranges are given in Table 3 of Chapter 3. The properties of water for the range 212 F to 400 F are shown in Table 1.
Water temperatures of 350 to 400 F requiring 250 psig working pressure will largely be limited to district and in stitutional installations. In such applications the heat quan tities and distances to be covered usually justify the added cost of the heavier pipe, fittings and special valves.
Boilers
The boiler plants of the larger high-temperature water systems are comparable to boiler plants of power generating stations operating within the same pressure range. The boil ers should be selected for size and type in keeping with the load and design pressures. Both steam for power or process ing and high-temperature water for heating may be supplied from the same boiler plant. The load is determined by the heat required for:
1. Space heating and winter air conditioning 2. Generated steam required for power. 3. Water heating or heat processes.
The boilers may be water-tube, horizontal return-tube or Scotch marine type, and may be equipped with any conven tional fuel-firing apparatus. Water-tube boilers are favored for higher pressure ranges--200 psig and upward. Boilers may be of either forced circulation or gravity circulation type. The circulating pump of forced circulation boilers must operate continuously during operation of the boiler. Water-
tube boilers frequently require separate vessels for the pressure cushions, depending on the volume of the steam drum relative to system requirements. When systems using fire-tube boilers are cushioned by steam, expansion space may be available within the boiler itself.1 A separate vessel usually is used when the' system is cushioned by air or other gas.
Proper distribution, of return water and of water flow is essential in all types of boilers to prevent tube failures due to overheating or unequal expansion in boiler tubes.
Expansion Pressure Cushion
Four methods are used to produce and maintain the neces sary pressures on the system:
1. A steam cushion in. the rfAam space of the boiler or a steam drum.
2. A separate expansion tank for steam .pressurizing. 3. Compression tank with comprised air or an inert gas. * 4. An automatic pressure pump.*- * *
A steam cushion or a pneumatic cushion is generally fa vored because it may also accommodate the expansion. The steam cushion method for maintaining pressure above the water level in the boiler requires space to accommodate the expansion of the water volume within the system when heated to the system operating temperature. Systems which do not use steam for maintaining the required pressure, or in which the boiler steam space is inadequate to accommodate the change in water volume, will require additional tanka or steam drums for expansion.
The arrangement of the tanks for pneumatic cushioning is similar to the closed expansion tanka when air pressures are used for cushioning or pressurizing. A suitable means of balancing or a connection from the bottom of the tank should be made to the main system return header. (See Fig. 4.)
A major problem when pressurizing by steam is to main, tain a proper boiler water level while providing for the change in water volume due to expansion and contraction. Boiler water level and flow connections should be designed to utilize the steam drum in adjusting to changes in water
fig. A .... Schematic Arrangement of Combustion and Feed-Water Controls