Document 71Q3vN73a10db40kbNpynEYrg
American Society of Heating and Ventilating Engineers Guide, 1934
db. 100
*- Boiler Factory
90 ^-Electric Power Substation
80
*- Ventilating Room for Large Hotel (Very Noisy)
Average Loudness of Music in Room-*- 70
Conversation in a Small Room-*
w-lnside of Duct, near Large Low Speed Fan *-Equipment Room (Average Condition \
60 *- Fan Room for School Building (Rather Quiet)
Speech tn a Small Auditorium -*
w-Guest Room, Large Hotel on Noisy Street (Windows Open>
50 Speech in a Large Auditorium-*
Near Outlet of Ventilating Duct m High School Auditorium < Very Noisy, no*Filters" in Duct)
40 Fan Noise in Theater (Poor Control of Noise)
30
20 Fan Noise in Theater (Proper Control of Noise)
10 ^Near Outlet 6f Ventilating Duct in M. G. M. Sound Studio (Planned Control of Noise)
Fig. 1. Chart Showing the Equivalent Loudness (in Decibels) of Speech, Music, and a Number of Noises Incident to the Ventilating of Buildings*
^Acoustical Problems in the Heating and Ventilating of Buildings, by V. O. Knudsen (A.S.H.V.E, Transactions, Vol. 37, 1931).
In every problem of noise reduction in buildings it is necessary to know how much noise can be tolerated. The noise levels given in Table 1 may be regarded as completely inoffensive. They represent what might be
termed ideal conditions, not often realized in existing buildings. How ever, they represent conditions which can be attained by proper control
Table 1. Acceptable Noise Levels
Talking Picture Studios.... ............ :........... ... ............................ --........... Radio Broadcasting Studios............. .................... ....... ....................... -- Hospitals.................................. ......... ........................................................ Music Studios_____________________________ _____________________ Apartments, Hotels, Homes, Small Private Offices............................... Theaters, Churches, Auditoriums, Classrooms, Libraries.................... Talking Picture Theaters, Small Clothing Stores....... .......................... General Offices_____ __________ ___________________ _______________ Large Public Offices, Banking Rooms, Upper Stories of Department
Stores, Restaurants, Barber Shops.... ........................................... .. Grocery Stores, Drug Stores--__ ______________________ ___ Accounting and Typewriting Offices............. ...................... ................. . Main Floor of Department Stores........... ........... ..................... ........... .
244
6 to 8 db 8 to 10 db 8 to 12 db 10 to 15 db 10 to 20 db 12 to 24 db 15 to 25 db 20 to 30 db
25 to 35 db 30 to 50 db 35 to 45 dD 40 to 50 db
Chapter 18--Sound Control
of noise, and the heating and ventilating engineer should aim to provide
the degree of quiet specified in the table.
In considering the tolerable room noise level due to heating, ventilating, or air conditioning apparatus, not only must the absolute value of the noise be considered but also its relation to the room noise level without the apparatus running. This is necessary since a large increase of noise subjects the apparatus to serious criticism even though the level may be low. It must also be borne in mind that the noise produced by the ap paratus is additive to that of the room without apparatus. Thus if the two are equal, when combined the noise level will be 3 db higher. For these reasons the room noise caused by the apparatus should not exceed
the other room noise.
Noise Control
Essential to the design of a satisfactory system are: first, a knowl edge of the nature and intensity of the noise generated by the various parts of the equipment; second, a knowledge of how to vary the noise level between the apparatus and the conditioned room if need be; third, a knowledge of the acceptable level of apparatus noise in the con ditioned room. Besides these, the engineer must be able to deal with other noises which might enter the room when openings are made, into it, such as cross talk between rooms connected with common ducts, and noise transmitted to portions of duct systems outside the conditioned room and
thence to its interior. The problem of apparatus noise is receiving the study of equipment
manufacturers who are aiming at both noise reduction and standardiza.tion. Some manufacturers now have noise ratings available for their equipment, while some pass each unit of equipment of certain types
through sound tests during the course of manufacture.
The problem of noise reduction from apparatus to room must take into consideration and treat separately the three modes of travel of noise to the . room: first, from the apparatus through the air to the walls of the room and thence to its interior; second, through the building structure to the room; third, through ducts or openings to the room. Because the noise entering by each of these three channels is susceptible to quantitative analysis, solutions are available. Along with the transmission of sound through the building structure, the engineer must also consider the transmission of vibration, which may also be objectionable. The solution is not complete, however, until the effect of the noise entering the room on
the room noise level is determined.
ROOM NOISE LEVEL, COEFFICIENTS OF ABSORPTION
One of the most effective means of reducing noises in ventilating equip ment is accomplished by the proper covering of the interior walls and ceiling of the equipment room, or the inner walls of the ducts, with soundabsorptive materials. The intensity I of a continuous sound in a room is
I
_E a
or -P--a-S--'
(2)
where
= the rate of emfssion of the noise source -- P S'. (The intensities of noises entering
the room times the areas through which they enter).