Document a4D7V9v6y0rne8EKb42LNqGpy
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CHAPTER 32
1956 Guide
Air Duct Design
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noted, however, that absolutely reliable dynamic loss coefficients are not yet available for all duct elements and-that; the information available for pressure losses due to area changes is generally restricted to' symmetrical area changes.
Fig. 6, which shows the relation of velocity pressure to velocity for stand ard air (V = 4005a/#v), can be conveniently, used to find thetota'l dynamic pressure loss for any duct element with known dynamic loss coefficient C.
PRESSURE LOSSES IN ELBOWS
Dynamic loss coefficients are nearly independent of the air.velocity and are affected by the roughness of the duct walls only in the. case of bends,
for which the dynamic losses are often grouped with the friction losses to facilitate design calculations. An A.S.H.A.E. survey6 of available data has indicated that the method of expressing the combined dynamic and friction losses due to an elbow as equivalent to the loss in a length L of similar
straight duct is justified for design purposes, owing to the relation of the loss to the corresponding friction factor, /.
Fig. 7 gives the additional equivalent length of duct in terms of widths W for elbows in rectangular ducts; Fig. 8 gives the equivalent length of duct in
terms of diameters 2)-for round ducts. When these curves for additional
equivalent length are used, the straight lengths of duct between elbows
should be measured to the intersection of their center lines.
Example 4: (Use of Fig. 7 for the calculation of elbow losses.)
Given the portion of a duct system shown in Fig. 9, it is required to determine the
ressure loss between points A and D. Air at.
nnn/iitmno ;0
------
W,Solution:
Ih 6
For
elbow No.
1
the radius
ratio is
Si IF,
=~ .24
=
0.75 and
theJ aspect
ratio
24 0.25. The additional equivalent length for elbow No. 1 in terms of W
Fig^ 7. Loss in 90-Deo Elbows of Rectangular Cross Section
Fig. 9. Portion of Duct System, for Example 4