🔊 Acoustics Hub | Room Acoustics

RT60 Reverberation Time Calculator: Sabine and Eyring Room Acoustics

Calculate room reverberation time using both the Sabine and Eyring formulas across six octave bands. Enter room dimensions and surface materials, see RT60 in seconds, and find out exactly how many acoustic panels you need to hit your target. Built for US home theater builders, recording studios, and classrooms.

Sabine and Eyring Formulas 6 Octave Bands (125Hz to 4kHz) 18-Material Library with NRC Panel Count Recommendation Occupancy Adjustment Free PDF Report
Room Dimensions and Surfaces
Measurement Units
Room Dimensions
Length (ft)
Width (ft)
Height (ft)
Enter dimensions then click “Auto-Fill Areas” to populate surface areas automatically.

Surface Materials and Areas
Area column auto-fills from room dimensions or enter manually. Select material and NRC updates automatically.
people
Each seated person adds approximately 4.5 sabins of absorption at mid-frequencies.
seconds
Home Theater: 0.3-0.5s | Studio: 0.2-0.4s | Office: 0.4-0.6s | Classroom: 0.4-0.6s
RT60 by Octave Band: Sabine vs Eyring (seconds)

What RT60 Reverberation Time Tells You About Your Room

Most people who build home theaters, recording setups, or home offices have heard the word acoustics and associate it vaguely with “soundproofing” or “making a room quieter.” But acoustics as practiced by engineers is a precise discipline, and RT60 is its most important single measurement. It tells you not how loud or quiet a room is, but how the room processes sound over time. Two rooms can have identical dimensions and identical speaker systems and sound radically different because one has an RT60 of 0.4 seconds and the other rings for 1.2 seconds. The longer the RT60, the more a room adds its own sonic character on top of whatever sound source you are playing. A boomy, muddy, echoey room is almost always a long-RT60 problem, and it affects every room in the United States regardless of how expensive the speakers or the receiver are.

The 60 in RT60 refers to the 60-decibel decay range used to define the measurement. A 60 dB decay corresponds to a factor of one million in energy: when a sound source stops, the room continues to radiate residual energy until it falls to one-millionth of its original level. In a room with an RT60 of 0.5 seconds, sound takes half a second to fall by this factor. In a cathedral with an RT60 of 4 seconds, it takes four seconds. The practical consequence for speech is that each spoken syllable leaves an acoustic tail that overlaps the next syllable. If that tail is longer than about 50 to 80 milliseconds, intelligibility begins to degrade. At RT60 values above 0.8 seconds, speech in a room becomes effortful to follow, a common complaint in restaurants, conference rooms, and reverberant kitchens across American homes.

This calculator gives you both the Sabine and Eyring estimates, computes RT60 across six octave bands from 125 Hz to 4 kHz, and tells you exactly how many acoustic panels you need to reach any target you set. It accepts US imperial dimensions in feet and inches and includes a material library of 18 commonly available US acoustic materials with published NRC values per ASTM C423. No other free US calculator combines all of these features in a single tool.

Every amplifier is designed to deliver power into a specific range of speaker impedances. Reverberation time, abbreviated RT60, is the number of seconds it takes for a sound to decay by 60 decibels after its source stops. This single number tells you more about how a room sounds than almost any other acoustic measurement. A long RT60 means the room is live and reverberant: sound reflects repeatedly off hard surfaces before dying away, producing the echo-heavy sound of an empty warehouse or a tiled bathroom. A short RT60 means the room is dead and dry: sound is absorbed quickly, like a room fully lined with acoustic foam or a heavily carpeted, curtain-draped home theater.

The practical importance of RT60 for US home builders and installers comes down to four applications. In home theaters, an excessively long RT60 makes movie dialogue intelligible and muddy, even with a premium sound system. The Dolby and THX specifications for dedicated home cinema rooms call for an RT60 of 0.3 to 0.5 seconds, which is significantly shorter than a typical untreated living room that might measure 0.8 to 1.2 seconds. In home recording and podcasting studios, a long RT60 adds unwanted room character to vocal tracks and guitar recordings. In home offices used for video conferencing, a long RT60 creates the hollow, echoey sound that makes remote calls hard to follow. In classrooms and conference rooms, the ANSI standard for acoustic performance (ANSI/ASA S12.60) requires a maximum RT60 of 0.6 seconds in unoccupied small classrooms to protect speech intelligibility.

Reference targets for US spaces: Home Theater: 0.3-0.5s | Home Recording Studio: 0.2-0.4s | Home Office / Podcast: 0.3-0.5s | Living Room: 0.4-0.6s | Conference Room: 0.5-0.7s | Classroom: 0.4-0.6s (ANSI/ASA S12.60) | Restaurant: 0.8-1.2s.

How This RT60 Calculator Works: Sabine, Eyring and the 6-Band Method

The calculator uses two different reverberation time formulas and computes RT60 across six octave bands from 125 Hz to 4 kHz. This multi-band approach is a significant upgrade over single-frequency calculators because real rooms almost always have much longer RT60 at low frequencies than at high frequencies. Carpet, acoustic foam, and fabric panels are highly effective at absorbing mid and high frequencies but do almost nothing at 125 or 250 Hz. Bass frequencies can ring far longer than treble in the same room, which is why heavy bass treatments like corner bass traps are a separate design problem from mid-range absorption panels.

The Sabine Formula

The Sabine formula is the foundational equation in room acoustics. Published by Wallace C. Sabine in 1900 in The American Architect and Building News based on experiments at Harvard University, it relates RT60 to room volume and total sound absorption. The imperial version, using room volume in cubic feet and absorption in sabins (one sabin equals one square foot of perfect absorber), uses the constant 0.049 derived from the speed of sound at room temperature. The formula works best in live rooms where average absorption is low, below about 30 percent of the total surface area. In dead rooms with heavy treatment, it increasingly overestimates RT60.

The Eyring Formula

The Eyring formula, developed by Carl Eyring in 1930, corrects the Sabine overestimation in more absorbent rooms. Instead of using the sum of individual absorptions, it models the natural logarithm of the survival probability of a sound wave after each reflection. The two formulas give nearly identical results in live rooms but diverge meaningfully in treated rooms. As a rule of thumb: if your room’s average NRC (the weighted average absorption coefficient of all surfaces) is below 0.2, the Sabine result is accurate enough for planning purposes. If the average NRC is above 0.3, use the Eyring result as your primary reference. Both are shown side-by-side in this calculator so you can see the difference directly.

Per-Band RT60: The Missing Feature in Most Calculators

The most significant upgrade this calculator offers over most US competitors is the per-band RT60 chart showing reverberation at 125, 250, 500, 1000, 2000, and 4000 Hz. The NRC value on a product label is the average of the 250, 500, 1000, and 2000 Hz measurements and intentionally hides the frequency-specific response. Acoustic foam, for example, might have an NRC of 0.65 but provides almost no absorption at 125 Hz. Drywall is relatively reflective at high frequencies but can actually absorb bass energy at 125 Hz due to panel vibration. The octave band chart lets you see where your room’s RT60 is flat across frequencies (well-designed) versus where it has problems (long low-frequency tail that needs bass traps, or over-absorbed highs that sound unpleasant).

Three Real RT60 Calculations for US Home Theaters, Studios, and Offices

Example 1: Untreated Home Theater Room (14 x 11 x 8 ft)
SurfaceArea (sq ft)MaterialNRCSabins at 500 Hz
Floor154Carpet thin0.2030.8
Ceiling154Drywall0.057.7
Front / Rear Walls176Drywall0.058.8
Side Walls176Drywall0.058.8
Total56.1 sabins
RT60 Sabine / Eyring1.07 s / 0.98 s

A typical untreated basement home theater with thin carpet and drywall walls comes in around 1.0 seconds of RT60, more than twice the 0.4 second target for a dedicated theater. The primary culprit is the ceiling and four drywall walls, which contribute minimal absorption. Treating the ceiling with acoustic tiles (NRC 0.70) and adding fabric panels to the rear and side walls would reduce this to the 0.4 to 0.5 second range.

Example 2: Home Recording Vocal Booth (8 x 6 x 7 ft, Treated)
SurfaceArea (sq ft)MaterialNRCSabins at 500 Hz
Floor48Carpet heavy0.3516.8
Ceiling48Fiberglass 2-inch0.8038.4
Front Wall42Fabric Panel 2-inch0.8033.6
Rear Wall42Fabric Panel 2-inch0.8033.6
Side Walls112Acoustic Foam 2-inch0.5056.0
Total178.4 sabins
RT60 Sabine / Eyring0.18 s / 0.15 s

A heavily treated vocal booth achieves an RT60 of 0.15 to 0.18 seconds, firmly in the “dead” range. At this level, recordings made in the booth will have very little room character, which gives the mixing engineer full control over the sound in post-production. Note that the Sabine and Eyring formulas diverge here: the average NRC exceeds 0.50, which is exactly the range where Eyring is more accurate.

Example 3: Open-Plan Home Office (20 x 16 x 9 ft, Partially Treated)
SurfaceArea (sq ft)MaterialNRCSabins at 500 Hz
Floor320Hardwood0.0516.0
Ceiling320Acoustic Tile0.65208.0
Walls (all)648Drywall0.0532.4
Total256.4 sabins
RT60 Sabine / Eyring0.50 s / 0.46 s

Replacing a standard drywall ceiling with commercial acoustic tile in a home office is one of the single highest-impact acoustic treatments available. In this example, the drop ceiling alone brings a space that would otherwise ring for over one second down to 0.5 seconds, perfectly within the comfortable range for video conferencing and remote work without any wall treatment at all. This is the principle behind the ubiquitous drop acoustic tile ceiling in US commercial office buildings.

Expert Tips for Hitting Your Target Reverberation Time

Bass frequencies are almost always your longest RT60

Unless you have specifically addressed bass trapping, your room’s RT60 at 125 Hz is almost certainly much longer than at 500 Hz or 2000 Hz. Most broadband acoustic panels (fabric-wrapped fiberglass, commercial acoustic tiles) are engineered for mid and high frequency absorption and do little at 125 or 250 Hz. Effective bass trapping requires thick, dense absorbers: minimum 4-inch thick fiberglass or rockwool batt installed floor-to-ceiling in room corners, where pressure is highest for bass modes. Corner bass traps address both the low-frequency RT60 issue and the standing wave problem that causes specific bass frequencies to boom at certain listening positions. Check the per-band chart in this calculator after entering your room’s materials to identify how long the low frequency RT60 is before and after planning your treatment.

Use the Eyring result when your room is heavily treated

The Sabine formula becomes increasingly inaccurate as the average NRC of the room rises above 0.3. In a room with extensive foam, panels, or carpet, Sabine will overestimate RT60 by 10 to 25 percent compared to the actual measured value. The Eyring formula handles high-absorption rooms correctly and gives a more accurate prediction for treated spaces. For planning purposes when designing a studio vocal booth, isolation room, or any space where you are targeting an RT60 below 0.3 seconds, always use the Eyring result as your primary reference. For typical living rooms and lightly treated home theaters, the Sabine and Eyring values are close enough that either works for planning.

Two-inch panels treat mid frequencies, not bass

Standard two-inch thick acoustic foam or fabric panels (the kind sold in sets of twelve at home improvement stores or on Amazon) are effective at frequencies above about 500 Hz. At 125 Hz, most two-inch panels absorb less than 10 to 15 percent of incident energy. For a complete acoustic treatment that addresses both dialogue clarity (a mid-frequency issue, 500 Hz to 2 kHz) and bass tightness (a low-frequency issue, 80 to 250 Hz), you need a combination of mid-range absorption panels on the walls, ceiling cloud above the mix position, and bass traps in all four floor-to-ceiling corners. The panel count recommendation in this calculator is calibrated for standard Class A fabric panels with an NRC of 0.80, which covers the mid and upper frequency range but not the bass frequencies.

Place panels at first reflection points, not randomly

Acoustic panels work best when placed at the points where sound first reflects from walls before reaching the listener. In a home theater, these are the side walls at a point one-third of the room’s length from the front, the rear wall behind the main listening position, and the ceiling directly above and between the listener and the screen. You can find the first reflection points on your side walls with a simple mirror technique: sit in the listening position and have a helper slide a mirror along the side wall. Anywhere you can see the center of any speaker in the mirror is a first reflection point and benefits from acoustic treatment. Random placement of panels across entire walls is less effective per panel than targeted placement at reflective hot spots.

RT60 Target Reference Table for US Spaces

The following table summarizes the recommended RT60 ranges for common US residential and commercial spaces. These targets are based on published standards, manufacturer guidelines, and widely accepted architectural acoustics practice. They represent the midrange reverberation time measured at 500 Hz in an occupied or partially furnished condition.

Space TypeRecommended RT60Primary Standard or Reference
Dedicated Home Theater0.3 to 0.5 sDolby Atmos / THX
Home Recording Vocal Booth0.15 to 0.3 sIndustry practice
Home Podcast / Voiceover Studio0.2 to 0.4 sBroadcast industry
Living Room / Multipurpose Room0.4 to 0.7 sArchitectural acoustics
Home Office (video calls)0.3 to 0.5 sTeleconference best practice
Small Classroom (under 10,000 cu ft)0.4 to 0.6 s maxANSI/ASA S12.60-2010
Conference Room0.5 to 0.7 sASHRAE acoustics guidelines
Restaurant / Casual Dining0.8 to 1.2 sArchitectural acoustics
Religious Space / Chapel1.5 to 3.0 sArchitectural acoustics

Enter your space type’s target from this table into the Target RT60 field in the calculator above. The calculator will compare your current room’s Sabine RT60 to your target and recommend the number of standard 2×4 foot Class A absorption panels needed to bridge the gap.

16 Frequently Asked Questions About RT60 and Room Acoustics

What is a good RT60 for a home theater room? ▼
Dolby Atmos home theater installation guidelines recommend an RT60 of 0.3 to 0.5 seconds in the 500 Hz to 2 kHz range for dedicated home cinema rooms. THX home theater certification targets a similar range. Most untreated rooms with drywall walls and minimal soft furnishings measure 0.8 to 1.5 seconds, meaning significant acoustic treatment is needed to meet cinema standards. A practical target for a multipurpose room that also serves as a living space is 0.5 to 0.7 seconds, which is comfortable for both movies and everyday conversation without sounding acoustically dead. When measuring or estimating RT60 for home theater design, focus on the 500 Hz to 1000 Hz range because this is where movie dialogue fundamentals sit and where human hearing is most sensitive to coloration. Bass RT60 at 63 Hz and 125 Hz is a separate problem handled by bass traps rather than standard panel absorption. High-frequency RT60 above 4 kHz is rarely the primary concern in a home theater because standard materials such as carpet, upholstered seating, and even human bodies provide substantial absorption at these frequencies. Midrange absorption from properly placed acoustic panels on the side, rear, and ceiling of the room drives the subjective improvement in clarity and dialogue intelligibility more than any other single treatment choice.
What is the difference between RT60 and reverberation time? ▼
They are the same measurement. RT60 is the standard abbreviation: R stands for reverberation, T for time, and 60 refers to the 60-decibel decay used to define the measurement window. Some standards and texts use the notation T60 instead of RT60, and ISO 3382-2:2008 uses T (no superscript) as the formal notation. In practice all three terms refer to the time in seconds for sound to decay by 60 dB after the source stops, and you will see all three used interchangeably in building acoustics, recording studio design, and home theater literature in the United States.
What is a sabin and how does it relate to NRC? ▼
A sabin is the unit of sound absorption in the US imperial system. One sabin equals one square foot of perfectly absorbing surface, meaning it absorbs 100 percent of incident sound energy. A surface that absorbs 50 percent of incident sound contributes 0.5 sabins per square foot. The NRC (Noise Reduction Coefficient) is the absorption coefficient of a material, a number from 0 to 1 measured per ASTM C423 in a reverberation chamber. Total absorption in sabins equals area in square feet multiplied by NRC. A 100 square foot wall with NRC 0.20 contributes 20 sabins. The Sabine formula uses total sabins to compute RT60: more sabins means shorter RT60.
Why do Sabine and Eyring give different answers in my room? ▼
Sabine’s formula was derived by assuming that sound energy is uniformly distributed throughout the room and that each reflection causes a proportional loss of energy equal to the average absorption coefficient. This works well when the average absorption is low, below about 0.2. At higher absorption, the statistical assumption breaks down because absorbed energy does not contribute to the uniform sound field. Eyring’s correction uses the natural logarithm of the energy remaining after each reflection, which more accurately models the diminishing returns of absorption. When the average NRC of all room surfaces equals 1.0 (a perfectly anechoic chamber), Sabine predicts an infinite RT60 while Eyring correctly predicts zero. In typical treated rooms with average NRC between 0.2 and 0.6, Eyring gives results 10 to 30 percent lower than Sabine.
How accurate is the Sabine formula for home theater design? ▼
For untreated or lightly treated rooms typical of US residential construction, the Sabine formula is accurate to within 10 to 20 percent of actual measured RT60. This accuracy is sufficient for planning purposes: estimating how many panels you need and where to put them. The primary sources of prediction error in practice are not formula choice but input data accuracy. Manufacturer NRC ratings are measured in standardized test chambers with carefully controlled conditions. Installed real-world performance varies by 10 to 25 percent due to panel mounting method, air gap behind the panel, covering fabric density, and installation quality. For the purposes of planning an acoustic treatment, treat the calculator’s results as a close engineering estimate rather than a precise prediction, and plan to verify the final result with a measurement using a free tool like REW (Room EQ Wizard).
What is NRC and where do I find it for my materials? ▼
NRC stands for Noise Reduction Coefficient and is a single-number rating of a material’s sound absorption, averaged across four octave bands from 250 Hz to 2000 Hz, per ASTM C423. Products sold as acoustic treatment in the US are required to publish NRC values on their spec sheets. Common sources: GIK Acoustics publishes full octave-band data for their panels; Owens Corning and Johns Manville publish absorption data for their fiberglass insulation products; Armstrong and USG publish NRC data for their commercial ceiling tile lines. For materials without published NRC (raw drywall, common carpet, standard glass), use the representative values from the material library in this calculator. These values are sourced from published engineering databases including the ASHRAE Handbook and widely cited architectural acoustics reference books.
How many acoustic panels do I need for a home theater? ▼
The number of panels depends on your room’s current RT60, its volume, and your target. For a typical US home theater or media room of 1,500 to 2,500 cubic feet with drywall walls and standard flooring, reaching a target RT60 of 0.4 to 0.5 seconds typically requires treating 25 to 40 percent of the total surface area with Class A absorption panels (NRC 0.80 or higher). For a 20 x 15 x 9 foot room (2,700 cubic feet), this translates roughly to 16 to 24 standard 2×4 foot panels. Enter your actual room dimensions and materials into the calculator above to get the specific panel count for your space. The recommendation is based on Class A 2×4 foot fabric-wrapped fiberglass panels, the most cost-effective acoustic treatment option in the US market.
What is the difference between RT60 and STI (Speech Transmission Index)? ▼
RT60 measures how long sound continues after its source stops. STI (Speech Transmission Index) measures how intelligible speech is in a space, on a scale from 0 to 1. The two are related because excessive RT60 reduces STI: when sound decays slowly, syllables from earlier words overlap with later syllables, reducing intelligibility. However, STI is also affected by background noise level, direct-to-reverberant sound ratio, and the frequency balance of absorption. A short RT60 generally produces a high STI, but an extremely dead room with RT60 below 0.2 seconds can feel unnatural and stressful for speech, even though STI is technically high. For practical purposes in US home and light commercial construction, targeting an RT60 of 0.4 to 0.6 seconds produces excellent STI without the artificially dead character of an over-treated room.
Does furniture and soft furnishings count as acoustic treatment? ▼
Yes, significantly. A sofa adds approximately 2 to 4 sabins per square foot of projected area. A bookshelf full of irregularly placed books is an excellent acoustic diffuser. Heavy drapes contribute 0.35 to 0.50 NRC. A fully furnished living room with upholstered furniture, carpet, curtains, and filled bookshelves may have an effective RT60 of 0.5 to 0.7 seconds without any dedicated acoustic panels. This is why acoustic measurement made in a furnished room gives shorter RT60 than the same room calculated from bare surface materials. When using this calculator, add your room’s major soft surfaces: area rugs, upholstered furniture, and heavy window treatments. The calculator allows you to add surfaces for materials beyond the six basic room boundaries.
Why does my room sound different at low versus high frequencies? ▼
Most common room materials absorb high frequencies far more effectively than low frequencies. Carpet, acoustic foam, and fabric panels all have much higher NRC at 1000 Hz and 2000 Hz than at 125 Hz or 250 Hz. This means that in a typical room with standard treatments, RT60 at 125 Hz can be three to five times longer than RT60 at 2000 Hz. The perceptual result is bass that hangs in the air and feels “boomy” or “one-note” while treble sounds clear and controlled. This frequency-dependent reverb decay is visible in the octave-band chart produced by this calculator. The solution requires thick, dense bass absorbers, typically 4-inch or thicker fiberglass or rockwool installed floor-to-ceiling in the corners of the room, where bass pressure is highest.
Can I measure RT60 myself without professional equipment? ▼
Yes. Room EQ Wizard (REW), a free software application widely used by US home theater enthusiasts and recording studio designers, can measure RT60 with a consumer USB microphone and a laptop. The Dayton Audio UMM-6 USB measurement microphone costs around 75 dollars and when used with REW provides accuracy comparable to professional measurement equipment for residential purposes. The measurement procedure involves generating a sine sweep or clapping hands in the room and analyzing the decay rate in the recorded audio. REW also displays the full octave-band RT60 breakdown that matches what this calculator predicts, allowing you to verify your design targets and identify which frequency bands still need work after your initial treatment is installed.
What is the ANSI classroom acoustic standard for RT60? ▼
ANSI/ASA S12.60-2010 Part 1, published by the Acoustical Society of America, specifies maximum RT60 values for unoccupied classrooms to support speech intelligibility. For small core learning spaces up to 10,000 cubic feet, the standard requires a maximum unoccupied RT60 of 0.6 seconds. For larger learning spaces over 10,000 cubic feet, a maximum of 0.7 seconds applies. These limits are specifically for core educational spaces where teacher-to-student speech is the primary activity. The standard is referenced in numerous US state building codes and school construction guidelines. Achieving these targets in a typical concrete block school building with hard floors and minimal soft furnishings requires significant acoustic ceiling treatment, often supplemented by wall panels and carpet in reading areas.
What room shape is best for acoustics? ▼
Rectangular rooms are the most problematic for acoustics because parallel walls and equal dimensions create strong standing waves and echo flutter. The ideal room for critical listening has non-parallel walls (angled 3 to 5 degrees from parallel), avoided forbidden ratios (notably 1:1:1 cubic rooms and 1:2:4 rooms where all room modes stack), and sufficient volume to spread room modes. The Bolt area and Bonello criteria are two widely used methods for evaluating room dimension ratios: both are computed by the Room Mode Calculator linked in the related tools section below. For home construction where room shape cannot be designed from scratch, acoustic treatment compensates for geometric imperfections. A 10 percent deviation of walls from parallel requires roughly 30 percent less treatment to achieve the same RT60 compared to a fully parallel rectangular room.
Should I use acoustic foam or fiberglass panels? ▼
For home theater and studio applications in the US, fabric-wrapped rigid fiberglass panels (such as Owens Corning 703 or 705 wrapped in Class A fabric) consistently outperform open-cell acoustic foam at equal thickness. A two-inch 703 panel achieves roughly NRC 0.90 to 0.95, while a two-inch polyurethane foam panel typically achieves NRC 0.50 to 0.70 at equal thickness. Fiberglass also maintains its absorption properties for decades, while acoustic foam yellows, crumbles, and off-gasses with age. The drawback of fiberglass panels is that they require careful handling and usually professional or semi-professional construction (cutting with a knife, wrapping with fabric, and mounting with wall anchors). Pre-made commercial panels from companies like GIK Acoustics, Acoustimac, and Audimute sell ready-to-hang fabric-wrapped panels at prices that have become competitive with premium foam products.
How does room volume affect how much treatment I need? ▼
RT60 is directly proportional to room volume and inversely proportional to total absorption. Doubling the room volume doubles the RT60 if absorption stays constant. This means larger rooms need proportionally more absorption to reach the same RT60 target. A 3,000 cubic foot room needs roughly twice the sabins of absorption of a 1,500 cubic foot room to achieve the same RT60. Because surface area grows slower than volume as room dimensions increase (volume scales as the cube of linear dimension while surface area scales as the square), larger rooms have inherently less surface area relative to their volume. This is why large concert halls and auditoriums in the US require enormous quantities of absorptive seating upholstery: the audience itself is the primary source of absorption, and RT60 changes dramatically between an empty rehearsal and a full performance.
What is the 17 percent rule for acoustic panel coverage? ▼
The commonly cited recommendation that you should cover 17 to 25 percent of a room’s total surface area with acoustic panels to achieve a reasonable RT60 for home theater is a rough industry rule of thumb, not a precise engineering guideline. It assumes a standard rectangular room with drywall walls, standard carpet, and a typical ceiling height of 8 to 9 feet. Because it ignores room volume, existing absorption from furnishings, and target RT60, it is frequently wrong in both directions: some rooms need more coverage and some need less. This calculator replaces the 17 percent rule with the exact sabin mathematics from Sabine and Eyring, giving you a specific panel count based on your actual room dimensions, existing materials, and target RT60. Use the panel count output from this calculator rather than the percentage rule for accurate acoustic planning.

Related Calculators for Your Acoustic Treatment Build