Document Dj6Gk5xk0LrDRKno20Qjm9jN

American Society of Heating and Ventilating Engineers GuiDtPig^ water in the seventh radiator will be 170 F, and, according to Tahl Chapter 6, of the 1933 Guide, the heat dissipation of these two radiar will be to each other as 868 is to 617, or as 140 is to 100, and therefo'f the last radiator is to dissipate as much heat as the first, its size m,,J,e." 40 per cent larger. must be Example 4- Design a two-pipe, direct return, gravity circulation system for the I- out shown in Fig. 7. Assume that the main circuit from the boiler to the farthest ffy" riser and from the farthest return riser back to .the boiler consists of 160 fr w 6 elbows, and 1 boiler. P'P*> Solution. Replacing the boiler by 3 elbow equivalents and assuming that the larv -t size of the main will be about 3_in,, the total, equivalentJength-of-the main-will beTfin plus 45,"or 205 ft. Assuming that the center of the boiler will be about 4 ft lower'than th horizontal portion of the main, and that the temperature drop will be 35 F for tjle system, the pressure head caused by the difference in weight between the water in the Table 8. Maximum Capacities of Radiator Connections in Mbh,\for One-Pipf and for Two-Pipe Direct Return Gravity Circulation Systems with E Pipb Size Flow Return KK KK KK K1 l1 l IK IK IK Equivalent Length op Pipe (Febt) 1.0 1.5 2.0 3.0 1st Floor Mbh 4-1 5.2 7.0 9.1 12.5 17.5 2S.S 2nd, 3rd, and 4th Floc Mbh 5.9 7.5 10.5 13.0 17.8 2S.2 S3.2 the velocity. flow and return risers joining the mains to the boiler will be about 0.6 ia. of water, or about one-fortieth of the pressure head produced by the circulating pump selected for the system of Fig. 3. Table 6 may be used to determine the size of the main as follows: Refer to Column S and note that for Sections AB and IA, which supply 105;6-Mb_h, a 3-in. pipe is too large and a 23^-in. pipe is too small; hence, select 2% in. for Section AB and 3 in. for Section IA. For Sections BC and HI, which supply 76.8 Mbh, a 2}-in. pipe is almost exactly the correct size and is selected for both sections. For the forced circulation system of Fig. 5, the pressure head produced by the circu lating pump is used to force the water through the mains and also through the risers. Gravity circulation systems have two distinct pressure heads. One is produced by the difference in weight of the water in the flow and return risers adjacent to the boiler, and is the boiler pressure head, which in this case is 0.6 in. The other pressure head is pro duced by the difference in weight of the water in the flow and return risers adjacent to the radiators, and is the radiator pressure head. If the temperature drop through the radiators is about 35 F, and if the story heights of the building are 9 ft and the distance from the center of the first floor radiator to the average level of the main is 3 ft, the radiator pressure head of the first floor radiator is about 450 milinches and the pressure heads of the radiators on the upper floor are 1350 milinches greater than those on the next lower floors. Tables 6 and 7 are based on the assumption that the boiler pressure head must be equal to the friction head in the mains, and that the several radiator pressure heads must be equal to the respective radiator and riser friction heads. To design the radiator risers, use Table 7 and begin with the set nearest the boiler. The first-floor risers must supply 28.8 Mbh. According to the table, lj^-in. flow and return risers will supply 26.0 Mbh; if the return riser is increased to 1in., the capacity will be increased to 34.0 Mbh. This is considerably larger than necessary, and lfi-in. flow and return risers are selected. However, it must be remembered that the riser 572 ' ( Chapter 33--Hot Water Heating Systems and Piping , which are the connections from the flow and return mains to the flow and bra"m risers, are to be one size larger than the risers. ret-rhe second floor risers must supply 19.2 Mbh. According to the table, the capacity 1 in flow and return risers is 20.0 Mbh, and that size is selected. The third floor risers must supply 9,6 Mbh. If a Yi-'m. flow and a %-in. return riser 'sed the capacity will be 8.0 Mbh; if both risers are % in., the capacity will be iSVMbh. The %-in. pipe is selected for both risers. To design the radiator connections, use Table 8 and note that for the first floor Hiator connections the capacity of a M-in. flow and 1-in. return is 9.1 Mbh, and that of 1-in flow and a 1-in. return is 12.5 Mbh. The former is more nearly the correct size, h t since it is difficult to secure a good flow through first floor radiators, the 1-in. flow return connection ^ selected. - For the two upper floors; the capacity of a %:in. flow "j 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. 7 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 (SeeTable 6, Column 8), the boiler pressure head available for the first set of risers is 360 milinches in excess of that available for the fourth set. The velocity in the riser branch is 3 in. per second (See Table 7) and, therefore, according to Table 5, an 0.65-in. orifice in a lj^-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 lj^-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. MECHANICAL CIRCULATION Circulating pumps for hot water systems may be used to provide the motive head for forced circulation systems as already described, or to improve the operation of gravity-designed systems. Small specially-' designed centrifugal pumps installed on a by-pass with the necessary gate or check valves near the point where the return main enters the heater maybe employed. Specially-designed, electrically-driven, propeller-type circulating pumps or units may also be employed. The latter are usu ally installed directly in the return main and are avajjable for all com mercial pipe sizes used for hot water heating. The motor switch may be under manual control, automatic control using thermostatic elements, or tied in with the oil or gas burner switch which starts and stops the burner. For large capacities these units may be installed in multiple. For exceptionally large installations such as central heating plants, cir culating pumps of the centrifugal single stage type, having an average operating efficiency of 70 per cent against heads up to 125 ft, are some times used. It is generally advisable to install the pumps in duplicate to provide for contingencies and to insure continuous operation. In such cases each pump may be made equal to two-thirds of the maximum capacity required. 573