| name | acoustic-enclosure |
| description | Acoustic enclosure design — insertion loss, transmission loss (mass law), coincidence frequency, damping, leakage, vibration isolation, OSHA/ISO limits, NR/NC curves. |
| metadata | {"priority":7,"promptSignals":{"phrases":["acoustic enclosure","noise enclosure","sound enclosure","transmission loss","mass law acoustics","noise control","insertion loss"],"minScore":3}} |
Acoustic Enclosure Design — Complete Skill
Fundamentals
Sound pressure level: SPL = 20 log₁₀ (p/p_ref) [dB; p_ref = 20 μPa]
Sound power level: L_W = 10 log₁₀ (W/W_ref) [dB; W_ref = 10⁻¹² W]
Sound intensity level: L_I = 10 log₁₀ (I/I_ref) [dB; I_ref = 10⁻¹² W/m²]
Addition of levels (incoherent sources):
L_total = 10 log₁₀ (Σ 10^(L_i/10)) [dB]
Noise Limits
OSHA (29 CFR 1910.95):
85 dBA → 8 hrs; 90 dBA → 8 hrs; 95 dBA → 4 hrs; 100 dBA → 2 hrs
TWA = 90 dB action level; 85 dB recommended limit
ISO 1999: dose-response model for hearing damage
NC curves: NC-20 to NC-65; for office, HVAC, machinery environments
NR curves: European equivalent to NC; NR-25 to NR-75
Insertion Loss (IL)
Insertion Loss = SPL without enclosure - SPL with enclosure [dB]
Effective IL depends on: Transmission Loss (TL) of panels, leakage, internal absorption
Required IL:
IL_required = L_source - L_target [dB]
L_source = SPL at 1 m from machine without enclosure
Transmission Loss — Mass Law
For homogeneous panel (forced field):
TL = 20 log₁₀(f × m) - 47.5 [dB; f in Hz, m = surface density in kg/m²]
Examples at 1000 Hz:
12 mm steel (m = 94 kg/m²): TL = 20 log(1000 × 94) - 47.5 = 52 dB
25 mm dense concrete (m = 60 kg/m²): TL ≈ 48 dB
50 mm plywood (m = 30 kg/m²): TL ≈ 42 dB
Limitations:
Below critical frequency: stiffness-controlled (TL better than mass law)
At critical frequency: coincidence dip → TL drops significantly
Above critical frequency: back to mass law + damping dependent
Coincidence (Critical) Frequency
f_c = c₀² / (1.8 c_L t) [Hz]
c₀ = 343 m/s (air); c_L = longitudinal wave speed in panel; t = panel thickness [m]
c_L = √(E/ρ(1-ν²)) × correction
For steel: f_c ≈ 12,700/t [Hz; t in mm] (f_c = 1270 Hz for 10 mm steel)
For aluminum: f_c ≈ 12,400/t
For gypsum: f_c ≈ 3000/t
Coincidence dip magnitude: 10–20 dB below mass law
Mitigation: add damping (CLD — constrained layer damping); use double panels with air gap
Double-Panel Wall
TL_double = TL₁ + TL₂ + ΔTL_airspace - 6 [dB]
Resonance dip: at frequency f_res = c₀/(2d) where d = airspace depth
f_res = 343/(2 × 0.1) = 1715 Hz for 100 mm airspace
Absorption in cavity: use mineral wool → suppresses resonance modes → +10–15 dB
Double wall advantage: +15–20 dB over single wall of same total mass
Leakage — Critical Limitation
Sound leaks through gaps, penetrations, doors, ventilation openings
Leakage reduction:
TL_effective = TL_total - 10 log₁₀ [1/(1-S_l/S_total) × (S_l/S_total) × 10^(TL/10)]
Simplified: even 1% leakage limits effective TL to ~20 dB
Sealing: compression foam gaskets; labyrinth seals for large gaps; acoustic caulk for construction gaps
Ventilation: requires acoustic duct silencers; line duct with absorber; design f_pass > max important frequency
Internal Absorption
Absorption reduces reverberant buildup inside enclosure → reduces average SPL by:
ΔL = 10 log₁₀ (R₀/R) where R = room constant before/after absorption
R = α_avg × S_total / (1 - α_avg) [m²; α = absorption coefficient]
Absorption materials:
Mineral wool (50 mm): α ≈ 0.7–0.95 at 500–4000 Hz
Polyurethane foam (25 mm): α ≈ 0.4–0.8 at 500–4000 Hz
Hanging baffles: very effective for high bay spaces
Vibration Isolation of Machine
Enclosure must be isolated from machine vibration or structure-borne sound regenerates:
Isolators: rubber mounts or spring-damper beneath machine
Static deflection δ: f_n = (1/2π)√(g/δ); isolate above 1.5 × f_n
Transmissibility: T = 1 / |1-(f/f_n)²| → T < 0.1 requires f > 3 f_n
Design Procedure
- Measure source L_p spectrum (octave bands 63–8000 Hz)
- Determine required IL per band from limit
- Calculate TL_required ≥ IL + 6 (leakage and room factor)
- Select panel mass for mass law TL
- Check coincidence and add CLD damping if needed
- Design double panel if single panel TL inadequate (thick walls impractical)
- Seal all penetrations; design ventilation with silencers
- Add 50 mm mineral wool internally for reverberation control
- Isolate machine from enclosure structure
Output
Provide: required IL [dB(A)] and per octave band, panel construction and TL [dB per band], estimated effective TL with leakage factor, coincidence frequency and mitigation, internal absorption area [m²], ventilation silencer insertion loss, A-weighted SPL at operator position.