AHRI 885-2008 Procedure for Estimating Occupied Space Sound Levels in the Application of Air Terminals and Air Outlets (Incorporating Addendum 1 March 2011).pdf
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1、 2008 Standard for Procedure for Estimating Occupied Space Sound Levels in the Application of Air Terminals and Air Outlets AHRI Standard 885 with Addendum 1 (formerly ARI Standard 885) AHRI STANDARD 885-2008 WITH ADDENDUM 1, PROCEDURE FOR ESTIMATING OCCUPIED SPACE SOUND LEVELS IN THE APPLICATION OF
2、 AIR TERMINALS AND AIR OUTLETS March 2011 Addendum 1 (dated March 2011) of AHRI Standard 885-2008, Procedure for Estimating Occupied Space Sound Levels in the Application of Air Terminals and Air Outlets, is provided as follows. The particular additions are shown with shading and the deletions shown
3、 with strikethroughs. Table 8. Step-By-Step Calculation for the Procedural Example of Figure 6 SOUND PATH Octave Band Mid Frequency, Hz PATH # NAME 125 250 500 1000 2000 4000 Radiated and Induction Inlet Radiated and induction inlet Lw (from mfrs data, Table 5) 64 60 57 58 55 52 Environmental Adjust
4、ment Factor (6.2) -2 -1 0 0 0 0 Ceiling/Space Effect, Table D14, Type 1 Ceiling -16 -18 -20 -26 -31 -36 Radiated path Lp at receiver location 46 41 37 32 24 16 Duct Breakout Transmission Loss Path Terminal discharge Lw (from mfrs data, Table 5) 66 65 62 62 62 60 Environmental Adjustment Factor (6.2)
5、 -2 -1 0 0 0 0 5.0 ft 1.5 m lined rectangular duct 12 in x 12 in 300 mm x 300 mm, 1.0 in 25 mm FG (D1.3.2) (See Note 1) -1 -4 -10 -22 -20 -9 Duct transmission loss breakout noise, 0.03 in 0.7 mm (D1.2.4) -24 7 -27 10 -30 13 -33 16 -36 19 -41 24 Ceiling/Space Effect, Table D14, Type 1 Ceiling -16 -18
6、 -20 -26 -31 -36 Duct breakout transmission loss path Lp at receiver location 23 40 15 32 2 19 * * * Distribution Duct BreakoutTransmission loss Path Terminal discharge Lw (from mfrs data, Table 5) 66 65 62 62 62 60 Environmental Adjustment Factor (6.2) -2 -1 0 0 0 0 10 ft 3 m lined rectangular duct
7、 12 in x 12 in 300 mm x 300 mm, 1.0 in 25 mm FG (D1.3.2) (see Note 2) -2 -6 -16 -40 -40 -25 Rectangular Tee attenuation entering branch duct (D1.4.4) 0 0 -1 -5 -7 -5 Branch power division 50% split (D1.1) -3 -3 -3 -3 -3 -3 5.0 ft 1.5 m unlined rectangular duct (D1.3) 0 0 0 0 0 0 E D1 I1 D1 P C1 E E
8、P B T F I2 I1 Table 8. Step-By-Step Calculation for the Procedural Example of Figure 6 (continued) SOUND PATH Octave Band Mid Frequency, Hz PATH # NAME 125 250 500 1000 2000 4000 Duct breakout noise transmission loss, 0.03 in 0.7 mm (D1.2.4) (12 ft in x 12 ft in 300 mm x 300 mm, 10 ft 3 m long) -2 4
9、 -27 7 -30 10 -33 13 -36 16 -41 21 Ceiling/Space Effect, (D1.6) Table D14, Type 1 Ceiling -16 -18 -20 -26 -31 -36 Distribution duct breakout transmission loss Lp at receiver location 19 39 10 30 12 * * * Flexible Duct Breakout Transmission Loss Path Terminal discharge Lw (from mfrs data, Table 5) 66
10、 65 62 62 62 60 Environmental Adjustment Factor (6.2) -2 -1 0 0 0 0 10 ft 3 m lined rectangular duct 12 in x 12 in 300 mm x 300 mm, 1.0 in 25 mm fiberglass D1.3.2 (see Note 2). -2 -6 -16 -40 -40 -5 Rectangular Tee attenuation entering branch duct (D1.4.4) 0 0 -1 -5 -7 -5 Branch Power Division, 50% s
11、plit, D1.1 -3 -3 -3 -3 -3 -3 5.0 ft 1.5 m unlined rectangular duct (D1.3) 0 0 0 0 0 0 3.0 ft 0.9 m lined 8 in 200 mm diameter non-metallic flexible duct (D1.3.3) -4 -7 -14 -15 -16 -8 Duct transmission loss, 8 in 200 mm diameter non-metallic flexible duct (D1.2.2) -8 -8 -8 -9 -10 -13 Ceiling/Space Ef
12、fect, Table D14, Type 1 Ceiling. -16 -18 -20 -26 -31 -36 Flexible duct breakout transmission loss path Lp at receiver location 31 22 0 * * * Discharge Path Terminal discharge Lw (from mfrs data, Table 5) 66 65 62 62 62 60 Environmental Adjustment Factor (6.2) -2 -1 0 0 0 0 10 ft 3 m lined rectangula
13、r duct, 12 in x 12 in 300 mm x 300 mm, 1.0 in 25 mm fiberglass (D1.3.2) (see Note 2) -2 -6 -16 -40 -40 -5 Rectangular Tee attenuation entering branch duct (D1.4.4) 0 0 -1 -5 -7 -5 Branch Power Division , 50% split (D1.1) -3 -3 -3 -3 -3 -3 5.0 ft 1.5 m unlined rectangular duct (D1.3)0 0 0 0 0 0 D1 T
14、F I2 I3 B P I1 B P E I1 E D1 T F I2 Table 8. Step-By-Step Calculation for the Procedural Example of Figure 6 (continued) SOUND PATH Octave Band Mid Frequency, Hz PATH # NAME 125 250 500 1000 2000 4000 5.0 ft 1.5 m lined, 8 in 200 mm diameter non-metallic flexible duct (D1.3.3) -5 -10 -18 -19 -21 -12
15、 End reflection Factor, 8.0 in 200 mm diameter (D1.5) -10 -5 -2 -1 0 0 Space Effect (5.0 ft 1.5 m, 2400 cu ft 67 m3 room, Table D15) -5 -6 -7 -8 -9 -10 Discharge Lp at receiver location 39 34 15 * * 25 Outlet #1 Generated Outlet generated Lw (from mfrs data, Table 5) 40 43 46 46 44 42 Environmental
16、Adjustment Factor (6.2) -2 -1 0 0 0 0 Space Effect (5.0 ft 1.5 m, 2400 cu ft 67 m3 room, Table D15) -5 -6 -7 -8 -9 -10 Outlet generated Lp at receiver location 33 36 39 38 35 32 * Less than zero dB Note 1: For lined duct lengths up to 15 ft 4.5 m, take duct insertion loss before calculating breakout
17、 transmission loss (max. 7.5 ft 2.3 m) Note 2: The maximum recommended lined duct attenuation in any octave band is 40 dB. See D1.3.2. The contributions of the six individual paths as shown on the acoustic model will be combined to obtain the total Sound Pressure Level, Lp at the receiver location.
18、A similar calculation may be completed for various receiver locations (i.e., directly under the terminal or directly under the diffuser) in order to determine the acoustically critical receiver location. The paths considered are: 1. Radiated and induction inlet 2. Duct Transmission Loss Breakout 3.
19、Distribution Duct Transmission Loss Breakout 4. Flexible Duct Transmission Loss Breakout 5. Discharge 6. Outlet #1 Generated O1 I3 R S S E Table 9. Summary Combination of Path Results Using Logarithmic Addition, dB Path # Description Octave Band Mid Frequency, Hz 125 250 500 1000 2000 4000 Radiated
20、and induction inlet path 46 41 37 32 24 16 Duct breakout transmission loss path 23 40 15 32 2 19 * * * Distribution duct breakout transmission loss path 19 39 10 30 0 12 * * * Flexible duct breakout transmission loss path 31 22 0 * * * Discharge path 39 34 15 * * 26 25 Outlet #1 generated path 33 36
21、 39 38 35 32 Total Lp at receiver location check numbers here 47 48 43 41 39 35 33 * less than zero dB Note: In this example it can be seen that the critical paths are casing radiated (Path #1), discharge (Path #5) and outlet generated (Path #6). 6.6 Additional Acoustic Models. Examples of the acous
22、tic paths involved with single/dual duct terminal boxes and integral diffuser terminals are illustrated in Figures 7 and 8. The associated path factor calculations are tabulated in the summary calculation Tables 10 and 11 which list the source of the attenuation data. Figure D1. Branch Power Divisio
23、n A1 A3 A2 A1 A2 A3 Table D2. Power Level Division at Branch Takeoffs B/T Division, dB B/T Division, dB 1.00 0.80 0.63 0.50 0.40 0.32 0.25 0.20 0.16 0.12 0 1 2 3 4 5 6 7 8 9 0.100 0.080 0.063 0.050 0.040 0.032 0.025 0.020 0.016 0.012 10 11 12 13 14 15 16 17 18 19 Reprinted with permission of the Ame
24、rican Society of Heating, Refrigerating the transmission loss is dependent on the duct geometry. D1.2.1 Circular Sheet Metal Duct. is calculated from the transmission loss characteristics of the duct and from the cross sectional typically, the Sound Power obtained from manufacturers sound power data
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