Document V3ZM69E2n3869jLmMy76O1rQj
216
CHAPTER 14
Table 27 ..;. Effect of Loading Direction on Flexibility of Rubber Mounts
Rubber-in-Compression must be al lowed room to bulge out (as in ribbed or waffled pads) to obtain reasonable vertieal-'flexibility. Compression mounts may have too much horizontal flexibility.
I2ubber-tn-Tension is cot safe because bond can fail.
Rubber-in-Shear is widely used be cause it permits substantial deflections. As shown, mount does not have enough horizontal flexibility for.most applica tions. :
. Balance between horizontal and verti cal flexibility is achieved in many conu merical rubber isolators by suitable ar rangementof material to get compression and shear ineach direction.
A more practical approach is to isolate the pipe from the building structure for at least the distance shown under B in Fig. 33. Within the indicated distance, the pipe should be sus pended only from flexible pipe hangers having a static deflec tion of at least 4 times the static deflection of the machine mounts. In basement installations, these hangers should not be supported from the ceiling, but rather from the floor. As ah additional safeguard, for pumps, it is often advisable to provide a removable spool piece in the lines so that a flexible
1965 Guide And Data Book
rubber hose can be inserted later if a noise problem is found to exist.1*
Flexible pipe connections are needed in the suction as well
as the discharge lines, mid should be arranged to allow for both
horizontal and vertical morion. Expansion joints are designed
to take up longitudinal morion, but metallic or rubber hose
should not be subjected to longitudinal forces. The arrange
ment shown in diagram A of Fig. 33 is preferred.*1 Where this
is not possible, a single hose can be used, but it should be in
stalled parallel to the machine axis because axial vibrations
usually are not severe.
?
Recommended minimum lengths of flexible metallic hose
are listed in Tabic 26. The | in. machine movement for which
flexible hoses are generally designed may not be sufficient for
reciprocating compressors of over 75 hp, unless the compres
sor base consists of a heavy concrete block,, which in turn is
supported by the vibration isolators. Such an inertia block
decreases the vibrational morion, as shown in Fig. 24. To be
effective, the inertia block should weigh at least as much as
the machine. The inertia block also provides rigid drive align
ment and a low center of gravity desirable for stability.
Isolator Material and Configuration
The choice of resilient material for any given application largely depends on the required deflection. Practical deflec tion ranges of various materials are shown in Fig. 30.
Other points to be considered are life, chemical stability, cost, and damping.
Damping is a result of internal friction in the resilient ma terial. In the normal operating range, damping reduces the isolating efficiency. A certain amount of damping is desirable, however, because it reduces the vibrational motion of the machine during startup and shutdown when the speed passes through resonance (see Fig. 24).**
Mounts made of rubber or neoprene of 40 to 50 durometer hairiness (ASTM D-676-59T) " should provide 20 ' percent
PERIMETER FRAMING
EXTERNAL LEVELING BOLT
A. Mutti'tpriag Movati vit& Hovsingt
Fig. 34 .... Typical Vibration Isolators Using Steel Springs'
Sound Control
^ter deflection than that read from Fig. 30, in order to
compensate for damping. For 55 to 65 duromeier material,'
the correction factor is 40 percent. Several ways in which rubber elements can be arranged in
vibration isolators are shown in Table 27. The useful life of
rubber mounts at normal load and temperature is three or
more years of continuous operation.* Cork, which has a very high internal damping and a limited
flexibility, will seldom isolate primary vibrations. Cork pads
are useful, however, for noise isolation. Cork pads should be
sized to provide a load bearing area of about 5 to 15 sq in. for
each 100 lb of supported weight. For very light loads, felt is
often used instead of cork. Steel springs, which have a very high flexibility and very
low damping, are used to obtain a high degree of isolation at
even low speeds. Steel springs have practically unlimited life,
and are therefore preferred for applications where isolator
replacement must be avoided.
Several typical designs of commercial spring mounts are
shown in Fig. 34. Housings are needed for stability when the
springs are slender. If the outside diameter of the spring is
approximately equal to the height, no housing is needed, as
such springs are inherently stable. Bare spring mounts retain
their isolating efficiency under lateral thrust and. vibration.
Special vibration isolators for concrete block bases can be
embedded when the concrete is poured at the site into a form resting on the floor. After installation, the machine and the
inertia block are raised off the floor by taking up on the level
ing bolts of the isolators. (See Fig. 34B.)
1
It should be noted that all the spring mounts shown in
Fig. 34 feature an acoustical pad between the spring and the
foundation. These pads, which can be made of rubber, neo
prene, or cork, prevent audible frequency transmission due to internal resonances within the spring elements.*-77 Such wave
effects occur in rubber mounts, but to a much lesser degree.
Mounts made of knitted stainless steel wire or of plastic
enclosed glass fiber are available for installations requiring
high flexibility as well as high damping.
'To maintain drive alignment, motors should be mounted
on a common base with the equipment they drive. The iso-
'lators supporting the concrete base should be located and
leveled in such a manner that all will carry the same load and
have the same deflection. The isolators should be located high
enough or spaced far enough apart so that the machine will
not tend to rock excessively. The manufacturer's recommen
dations should be followed closely in the selection and instal
lation of the isolators.
STEP 7--CHECKING COMPLETED INSTALLATION
In spite of all precautions token, there will be occasional complaints about noise in a completed installation.
If the actual source of the noise can be identified, the remedy is often obvious. The following discussion includes: (I) ways of identifying actual noise sources, using only simple instruments, or without any instruments, and (2) possible corrections which may be made.
When the engineer is troubleshooting in the field, the most important thing is to listen to the offending sound. The best
mstniment8 are no substitute for careful listening. The human ear has a remarkable ability for identifying certain familiar sounds, for instance, the squeak of a bearing that needs oiling.
The ear is also a good direction finder and even range finder; a noise gets louder as one approaches the source. Not only the ear, but even the hands can help in identifying a noise source. When the general location of a hiss from a leaky high velocity duct has been found, the air jet from the leak
can usually be felt and the sound may change as the hftnd
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Table 28 .... Background Correction
DtdM difference between A-tound faret when eir-conditfoncng e<jorptneflf h operating (total level) end when it h net operating (bodbgrounC favaf)
0
I 2 3 4 7 JO
Decibels to be subtracted from
total A-eound level in order to
get the A-sound level due to
air-conditioning equipment over
alone
10 7 4 3 2 1 0,5
gets close. Panel or tubing rattle, etc., usually stops when the right spot is touched lightly.
Unless the source of the disturbing noise is quite obvious, the best way to identify it is by systematically eliminating all
possible sources:
1. Make sure that the objectionable sound is really caused by
the air-conditioning system. This must be done during the day
when the building is in normal use, because at night:even the
quietest air-conditioning system may seem noisy.
Unless the noise can be traced immediately to some part of the
air-conditioning system, background noise should be checked in
the room where tne complaint arises.
- - -:
If available, a sound level meter should be used to measure the
A-eound level of the noise: (1) with the air-conditioning system
in operation and (2) with the system shut off. The various sys
tem components (compressors, fans, pumps) should be turned off
separately, and readings should be token after each component ia
stopped. If no sound level meter is available, the listener must stay in.
the room and have the system operated or shut off by a second
person. Some signal must be given to the listener when anyj
component of the system is turned off, because the ear detects
changes in noise reiiabtly, but not to absolute levels.
Any system component can be termed a significant noise source
if, when that component is shut off, the A-eound level drops at
least 3 db, or if the quality of the sound is audibly improved. The'
A-eound level which is measured when the entire air-conditioning
system is not operating ia called the background level.
The noise level due to the air-conditioning system may bo.
calculated from the measured values of background level and'
total A-eound level (with the system in operation) by use of the
correction factors given in Table 28.
.
2. When it has Men established that some part of the air-condi
tioning system is the source of the objectionable noise, try to
isolate the source further. By walking around in the room,.'de-'.
terming whether the noise is coming from the air outlets or re
turns, or whether it seems to be coming through the walls. ' -
3. If the noise is traced to an air outlet, measure the A-eound.
level dose to it, but with no air blowing against the microphone.
Then remove the inner assembly or core of the air outlet, and!
repeat the reading with the meter and the observer in exactly,
the same position as before. If the second reading is more than'
3 db below the first, a significant amount of noise is caused by,
air flow over the vanes of the diffuser or grille. In this case, check
whether the system is balanced properly. As little as 10 percent
too much air will increase the sound generated by an air outlet byj
2.5 db. As a last resort, a larger air outlet could be substituted'to-
obtain lower air velocities, and hence less turbulence for the same'
air quantity. Before considering this, however, the air approach/'
to the outlet should be checked.
_
Noise far exceeding the normal rating of a diffuser or grille
will be generated when a damper installed dose to it is throttled.1
Air jets from such a damper impinge upon the vanes or cones of
the outlet and produce edge tones similar to the hiss that is heard
when blowing against the edge of a ruler. The material of the
vanes has no effect on this noise, although loose vanes may cause'
additional noise by vibration.
*-
When balancing air outlets with integral volume dampers,
consider the static pressure drop across the damper os well as
the air quantity (see Table 6). Separate volume dampers diould'
be ingteHftH sufficiently upstream from the outlet so that there is
no jet impingement. Plenum inlets should be brought in from the
side, so that the jets do not impinge on the outlet vanes. 4. If the air outlets are eliminated as sources of excessive,
noise, inspect the fan room. First check proper vibration isolation
of all machines: