Document EqaMDwX2209yQGe5DMJwVyakN
714
CHAPTER 32
1954 Guide)'.:'-
5. Calculate the sizes of all main and branch ducts by one of the three methods of sizing air supply systems in common use, the velocity reduction method, the equal friction method or the static regain method.
6. Calculate the losses for the duct offering the greatest resistance to the flow of air, using the A.S.H.V.E. Friction Charts, Figs. 1 and 2, and the other data given
in this chapter.
Recommended. Design Velocities
The air velocities given in Table 4 have been found to give satisfactory results in engineering practice. Where the higher velocities are used, the ducts should be cross-broken to prevent breathing, buckling or vibra tion, and should be constructed of heavier gage metal. At the higher velocities, it is particularly important to design the ducts for minimum resistance. Since high velocities at one point offset the effect of proper de sign in all other parts of the system, emphasis should be placed on the im-
Table 4. Recommended and Maximum Duct Velocities
Recommended Velocities, ppm
Maximum Velocities, ppm
Designation
Residences
Schools,
Theaters, Public
Buildings
Industrial Buildings
Residences
Schools, Theaters,
Public Buildings
Industrial Buildiogs
Outside Air Intakes* Filters* Heating Coils*
Air Washers Suction Connections Fan Outlets
Main Ducts Branch Ducts Branch Risers
500 250 450
500 300 500
500 350 600
800 300 500
900 350 600
1200 350 "
700
500
500
500
700
800
1000
1000-1600 1300-2000 1600-2400
500 900 1700
500
500
1000
1400
1500-2200 1700-2800
700-900 600 500
1000-13001200-1800 600-900 1. 800rl000
600-700
800
800~1200'll00-1600 1300-2200 700-1000! 800-1300 1000-1800 650-800 800-12001000-1600
These velocities are for total face area, not the net free area; other velocities in table are for net free
portance of air velocities, elbow design, location of dampers, fan connec tions, grille and register approach connections, and similar details. For in dustrial buildings, noise is seldom given much consideration, and main duct velocities as high as 2800 or 3000 fpm are sometimes used, but when these velocities are used due consideration should be given to duct design, resis tance pressure, fan efficiencies and motor horsepower. For department stores and similar buildings, 2000 to 2200 fpm are sometimes used in main
ducts where noise is not objectionable. Where high velocity diffusing outlets are used, the duct velocity should
be, if possible, equal to, or somewhat lower than the throat (neck) velocity of the diffuser, in order to utilize the effect of higher static pressure in the
duct for equalization of air discharge. The velocities in main ducts, and particularly in branch duets-and branch
risers, should be correlated to the throat (neck) velocity of the air outlets, and manufacturers' data should be consulted for permissible throat velocity
for the particular type of application. If it is necessary to use a duct velocity that is twice the velocity for
outlet mounted on the side of the duct, a collar with directing vanes should be used to straighten the flow of air from the outlet. Sometimes it;} desirable to mount the outlet flush with the side of the duct, in which case
Air Duct Design
715
the duct velocity should be kept below twice that of the outlet velocity, and even then an outlet larger than normally required should be used, as the entire outlet area will not be effective. Manufacturers' selection tables base sizing of outlets on required volume of air, temperature differential, and distance of throw or radius of diffusion. In following their recom mendations, maxima should be avoided. See Chapter 31 for a discussion of air outlets.
DESIGN METHODS
The design of the air transmission system is generally the last step in the design of the heating, ventilating or air conditioning system, but it should always be kept in mind that the type of air transmission used will, to some extent, depend on the type of equipment used, as well as on the purpose of the system. Various factors such as zoning and zone control, and their influence on the transmission and air distribution system, are briefly discussed in Chapter 30 (Central Systems for Air Conditioning).
The methods used for the design of duct systems reflect, to some degree, certain developments in the arts of heating, ventilating and air conditioning, and it took a long time before empirical methods gave way to more refined and scientific calculations. Some engineers prefer speed and simplicity to scientific exactness, but experience is then needed and proper judgment must be exercised to prevent mistakes. Both the Velocity Reduction Method and the Eqiud Friction Method take no account of the static regain resulting from the difference between the velocity of fan discharge and velocities of pipe discharge, and are therefore, to some degree, approximate methods. However, they are more easily applied than the static regain method which is based on proper theory, but is subject to an assumption (based on tests) regarding the efficiency of conversion from kinetic energy to static regain.
1. Velocity Reduction Method
When this method is used, arbitrary velocities for the various sections of the ducts are selected, with the highest velocity at the fan outlet, and lower velocities down the run as various branch ducts are taken off the main duct. Since the quantities of air that are to be delivered through each section of the duct are known, the area of each duct section can be easily determined by using the formula:
where
A = duct area in square feet. Q* = air quantity in cubic feet per minute.
= air velocity in feet per minute.
To fincj the total static pressure against which the fan must operate, the static pressure loss of each section is calculated separately, and the total Joss found by adding the individual losses of the sections of the duct which Jj48 the highest resistance. This may be the duct with the longest run, out not necessarily so.
.The velocity method has the advantage that the duct area can be deter mined very easily. It should be used only for simple layouts. The air velocities given earlier in this chapter are helpful in choosing proper ve-