| name | room-acoustics |
| description | Room acoustics design — reverberation time (Sabine/Eyring T60), absorption coefficients (NRC, SAA), room modes (axial, tangential, oblique), speech intelligibility (STI, RASTI, C80), noise criteria (NC, RC, NR curves), HVAC noise in rooms, isolation flanking paths, sound diffusion (QRD, skyline diffusers), flutter echo, early decay time (EDT), concert hall acoustics (LEDE, shoebox, vineyard), classroom acoustics (ANSI S12.60), and room acoustic simulation (ODEON, EASE). |
| metadata | {"priority":7,"promptSignals":{"phrases":["room acoustics","reverberation time","Sabine formula","speech intelligibility","acoustic treatment","room modes"],"minScore":3}} |
Room Acoustics Design — Complete Skill
Reverberation Time
Sabine Formula
Reverberation time T60:
T60 = 0.161 × V / (A_total) [s; V = room volume [m³]; A_total = total absorption [m²]]
T60 = 0.161 × V / (S × ᾱ) [ᾱ = average absorption coefficient; S = total surface area [m²]]
Sabine limitation: valid for well-distributed absorption; ᾱ ≤ 0.3 (lightly damped rooms)
Eyring formula (more accurate for highly absorbing rooms):
T60 = 0.161 × V / (-S × ln(1 - ᾱ)) [more accurate for ᾱ > 0.3]
As ᾱ → 1 (fully absorbing anechoic): T60 → 0 (Eyring gives finite T60; Sabine overestimates)
Air absorption (important for large rooms at high frequency):
T60 = 0.161 × V / (A_surfaces + 4mV) [m = air absorption coefficient [m⁻¹]]
m = 0 at 500 Hz; m ≈ 0.001–0.008 m⁻¹ at 2,000–8,000 Hz (depends on humidity)
Target Reverberation Times
By room type:
| Room Type | T60 at 500 Hz | Notes |
|---|
| Recording studio | 0.2–0.4 s | Dead; controlled; live + dead sections |
| Speech/broadcast studio | 0.3–0.5 s | Clear speech; minimal coloration |
| Conference room | 0.4–0.7 s | Good clarity; some warmth |
| Classroom | 0.4–0.6 s | ANSI S12.60 max 0.6 s for < 283 m³ |
| Open office | 0.3–0.5 s | Short RT for privacy; absorbing ceiling |
| Cinema | 0.3–0.6 s | Optimized for reproduced sound |
| Opera/concert hall | 1.4–2.2 s | Long for music richness; full hall |
| Worship (speech-focused) | 0.8–1.2 s | Compromise |
| Worship (organ/choir) | 1.5–3.0 s | Long for reverberant music |
| Gymnasium | 1.0–1.5 s | Needs treatment for speech intelligibility |
Frequency dependence:
Bass (125 Hz): RT typically 20–50% longer than 500 Hz (acceptable); if too long → muddy bass
Treble (4,000 Hz): RT shorter due to air absorption (natural); acceptable
Absorption Materials
Absorption Coefficients (NRC)
Noise Reduction Coefficient (NRC):
NRC = average of α at 250, 500, 1,000, 2,000 Hz [dimensionless; 0 = perfect reflector; 1 = perfect absorber]
Common materials:
| Material | NRC | α_125 | α_500 | α_2000 | Notes |
|---|
| Acoustic ceiling tile (Armstrong Cirrus) | 0.90 | 0.35 | 0.90 | 0.95 | Standard suspended ceiling |
| Open-cell foam 50 mm | 0.75 | 0.15 | 0.75 | 0.95 | High frequencies |
| Fiberglass board 50 mm, 64 kg/m³ | 0.90 | 0.40 | 0.95 | 0.95 | Excellent broadband |
| 2" thick fiberglass, 32 kg/m³ | 0.80 | 0.25 | 0.85 | 0.95 | Common wall treatment |
| Carpet (medium pile) | 0.35 | 0.05 | 0.30 | 0.60 | Low frequencies poor |
| Curtain (medium weight) | 0.35 | 0.05 | 0.35 | 0.60 | Low freq poor |
| Concrete block (unpainted) | 0.35 | 0.30 | 0.40 | 0.35 | Mid frequencies |
| Bare concrete | 0.02 | 0.01 | 0.02 | 0.02 | Hard reflective |
| Glass (window) | 0.10 | 0.25 | 0.06 | 0.02 | High frequencies reflective |
| Wood panel, 10mm | 0.15 | 0.30 | 0.10 | 0.08 | Panel absorber; bass |
SAA (Sound Absorption Average): newer metric; average of 12 third-octave bands 200–2,500 Hz
Total Absorption Calculation
Sabine absorption units:
A_i = α_i × S_i [m²; S_i = area of material i; A_i = sabins (m²)]
A_total = Σ A_i [total absorption; substitute into Sabine formula]
Example (conference room V = 200 m³):
Floor: 40 m² carpet α = 0.30 → A = 12 m²
Ceiling: 40 m² tile NRC 0.70 → A = 28 m²
Walls: 100 m² gypsum α = 0.05 → A = 5 m²
T60 = 0.161 × 200 / 45 = 0.72 s (target 0.5 s → need more absorption)
Add 20 m² acoustic panels (α = 0.90) on walls: A_panels = 18 → A_total = 63 → T60 = 0.51 s ✓
Room Modes (Standing Waves)
Axial, Tangential, Oblique Modes
Room mode frequencies:
f_nml = c/2 × √((n/L)² + (m/W)² + (l/H)²) [Hz; n,m,l = mode indices; L,W,H = room dimensions; c = 343 m/s]
Axial modes (one index ≠ 0): f = c×n/(2L) etc.; strong (most problematic)
Tangential modes (two indices ≠ 0): weaker
Oblique modes (three indices ≠ 0): weakest
Axial mode example (room 5 × 4 × 3 m):
f_100 = 343/(2×5) = 34.3 Hz; f_200 = 68.6 Hz; f_010 = 42.9 Hz; f_001 = 57.2 Hz
Modal density (Schroeder criterion):
Above f_Schroeder = 2,000 × √(T60/V): modes dense → diffuse field (statistical treatment valid)
Below f_Schroeder: individual modes dominate → lumped acoustic analysis
Mode spacing criterion (Bolt):
Axial modes should be evenly distributed; avoid coincident modes (room dimension ratios)
Best room ratios: L:W:H ≈ 1.0:1.28:1.54 (Bolt's "golden" ratios); avoids mode clustering
Bass trap:
For recording studios: place bass-absorbing material (mineral wool 200 mm thick) in corners (pressure maxima for many axial modes)
Limp mass panel absorber: tuned to peak at 80–150 Hz; complements porous absorber
Speech Intelligibility
Speech Transmission Index (STI)
STI range:
0.0–0.30: bad (unintelligible); 0.30–0.45: poor; 0.45–0.60: fair; 0.60–0.75: good; 0.75–1.0: excellent
Classrooms: STI ≥ 0.75 (ANSI S12.60 requirement)
STI depends on:
T60 (long RT → low STI): STI ≈ K/(1 + 14×t_lag) [Houtgast & Steeneken; simplified]
Signal-to-noise ratio: each 3 dB SNR improvement → significant STI improvement
SNR ≥ 15 dB for good intelligibility; SNR < 5 dB → poor
C80 (clarity index):
C80 = 10 × log₁₀(E_80/E_late) [E_80 = sound energy in first 80 ms; E_late = energy after 80 ms]
Music: C80 = -2 to +2 dB (good clarity with warmth); C80 > +4 dB → too dry for music
D50 (definition):
D50 = E_50/(E_total) × 100% [percentage of energy in first 50 ms; speech clarity]
Speech: D50 > 50% desirable; concert music: D50 = 20–40% (more late energy preferred)
Noise Criteria
NC and RC Curves
NC (Noise Criteria) curves:
Define acceptable background noise spectrum for different uses
NC rating = value of NC curve that just touches octave-band SPL spectrum from below
NC targets:
| Space | NC target |
|---|
| Broadcast studio | NC-15 to NC-20 |
| Concert hall | NC-15 to NC-25 |
| Conference room | NC-25 to NC-35 |
| Open office | NC-35 to NC-45 |
| Classroom | NC-30 to NC-40 (ANSI S12.60: ≤ 35 dBA) |
| Restaurant | NC-40 to NC-50 |
RC (Room Criteria) curves:
More complete than NC; includes low-frequency content; preferred for HVAC noise assessment
RC-25: good quality office; RC-35: acceptable; RC-45: background noise just noticeable
Sound Diffusion
Diffuser Types
QRD (Quadratic Residue Diffuser, Schroeder):
Wells of varying depths based on quadratic residue sequences; scatters sound hemispherically
Design frequency f_d = c / (2 × w_well) [w_well = well width]; effective above f_d
Period width: minimum D_min = D × N [N = sequence length; D = well width = λ_design/2]
Skyline diffuser:
2D QRD; different heights in both directions → scatters in full hemisphere
Used on rear walls and ceiling of recording studios; treatment of control room rear wall
Installation:
Minimum distance from diffuser: 1–2 m for diffuse field region
Mix with absorbers: too much diffusion → live room; too much absorption → dead room
LEDE (Live End Dead End) recording studio:
Front (dead end): absorptive treatment → no early reflections from front wall
Rear (live end): diffusive treatment → rich, diffuse late reflections → natural room sound
Concert Hall Acoustics
Key parameters:
T60 (mid-frequency): 1.8–2.2 s (full hall); EDT = early decay time (first 10 dB, ×6); EDT ≈ T60 for diffuse
IACC (Inter-Aural Cross-Correlation): measure of spaciousness; lower IACC → more immersive; IACC < 0.5 desired
Clarity C80: -2 to +2 dB (balance clarity and warmth)
G (Strength/Gain): 4–8 dB at 500 Hz (reinforcement relative to free field)
Hall shapes:
Shoebox: parallel side walls reflect → high IACC (narrow); good for classical music; Vienna Musikverein model
Vineyard/terrace: side balconies at various angles → lower IACC; good spaciousness; Berlin Philharmonie
Fan: wide; poor lateral reflections; low G; avoid for classical music
Standards and References
| Standard | Scope |
|---|
| ANSI S12.60 | Classroom acoustics (T60 ≤ 0.6 s; background noise ≤ 35 dBA) |
| ISO 3382-1 | Measurement of room acoustic parameters (T60, EDT, C80, STI) |
| ASHRAE 2019 HVAC Applications Handbook | Chapter 48: Sound and vibration control in buildings |
| IEC 60268-16 | STI measurement standard |
| BB93 (UK) | Acoustic design of schools |
| ASTM C423 | Sound absorption coefficient by reverberation room method |
Output
Provide: room description (V [m³]; L × W × H [m]; use: speech/music/studio/classroom), current surface finishes and areas (with α values from ASTM C423 database at 125, 250, 500, 1,000, 2,000, 4,000 Hz), Sabine T60 calculation (at 500 Hz; table for 125–4,000 Hz octave bands), target T60 [s] (by room type; per ANSI S12.60 or ISO 3382), additional absorption required ΔA [m²] (type and location: ceiling/walls; NRC of selected material), room modes (3 lowest axial modes in each dimension [Hz]; Schroeder frequency [Hz]; bass trap recommendation), background noise (existing NC level; NC target; HVAC noise contributor; isolation requirement), speech intelligibility (estimated STI or D50; T60 + SNR combined assessment), diffusion (if recording studio/concert hall: QRD specification; f_design [Hz]; well depth [mm]; location), and applicable standard (ANSI S12.60, ISO 3382-1, ASHRAE Chapter 48).