Grilles & Diffusers13 min read

Grille Free Area vs Ak Factor: Why a 6x6 Return Is Only 34% Open

We stamp and assemble grilles, registers and diffusers for a living, and the single most common specification error we see on incoming drawings is a free area percentage applied as if it were a constant. It is not. Free area is a property of a size, not of a model — and the number most sizing guides tell you to assume is roughly double the real one on small returns.

Aluminum egg crate return air grille core showing free area openings, blade pattern and frame flange used to calculate grille free area and Ak factor

Quick Answer

Free area is the see-through opening area — geometry you can measure with calipers. Effective area (Ak) is not geometry at all; it is a calibration constant tied to one specific measuring instrument, and the major manufacturers stopped publishing it. On our half-inch aluminum egg crate core, free area runs from 46.6% at 6x6 to 68.0% at 36x24 — because the 5/8 in frame flange is a fixed width subtracted from a face area that grows with the square of the size. Effective area is roughly 72% of that again, so a 6x6 return is about 34% open and a 24x24 is about 48% open. Size returns on gross face velocity against the nominal size (400–500 FPM occupied, 700–800 FPM mechanical) and reserve free area arithmetic for gravity transfer openings where there is no fan.

1. Four Different Numbers, One Word

When a drawing says "grille free area", it could mean any of four different quantities, and they differ from each other by up to a factor of two on the same physical product. Getting them straight is most of the battle.

TermWhat it measuresWhere it comes from24x24 example
Nominal / duct sizeThe wall or duct opening the grille servesCatalogue order code576 in² (4.00 ft²)
Core areaClear area inside the frame flange, before bladesFrame drawing518 in² (89.9%)
Free areaSee-through opening area through the blades or cellsGeometry — you can calculate it385 in² (66.8%)
Effective area (Ak)Instrument calibration constant, CFM = Vsensed × AkLaboratory test only — not calculable≈ 277 in² (48.1%)

Airwise standard stamped-steel return grille with half-inch aluminum egg crate core. Frame inner flange 5/8 in per side; cell opening 0.500 in with 0.080 in rib. Effective area estimated at 72% of geometric free area — see section 3 for why this figure is an estimate and not a published rating.

Hart & Cooley define free area in their GRD technical FAQ as "the total minimum area of the openings in the supply outlet or return inlet through which air can pass", also called the see-through area. They define effective area (Ak) separately as "the net area of a grille utilized by the air stream in passing through the face openings", used in the relationship CFM = face velocity × effective area. Two definitions, two different numbers, in the same document. Most sizing calculators online silently use one word for both.

The gap between free area and effective area is the vena contracta: air approaching a sharp-edged opening cannot turn instantly, so the jet keeps contracting for a short distance past the metal and a stagnant boundary layer forms alongside every blade. The hole is 67% open; the air only behaves as though 48% of it is open.

2. Why Free Area % Collapses on Small Sizes

Here is the part almost nobody writes down. The frame is a fixed width. The face area is not.

Our standard stamped-steel return grille has an inner flange of 5/8 in on every side, whether the grille is 6x6 or 36x24. That flange removes 1.25 in from the width and 1.25 in from the height of the clear core. On a large grille that is a rounding error. On a small one it eats the product.

Run the arithmetic. Core area ÷ nominal area = ((w − 1.25)(h − 1.25)) ÷ (w × h). Multiply that by the open fraction of a half-inch egg crate core — (0.500 ÷ 0.580)² = 74.3% — and you get the real free area for each size:

Nominal sizeClear coreCore / nominalFree areaEffective (≈Ak)Ak, ft²
6 x 64.75 x 4.7562.7%46.6%33.5%0.08
8 x 86.75 x 6.7571.2%52.9%38.1%0.17
10 x 108.75 x 8.7576.6%56.9%41.0%0.28
12 x 1210.75 x 10.7580.3%59.6%42.9%0.43
14 x 1412.75 x 12.7582.9%61.6%44.4%0.60
16 x 1614.75 x 14.7585.0%63.2%45.5%0.81
20 x 2018.75 x 18.7587.9%65.3%47.0%1.31
24 x 2422.75 x 22.7589.9%66.8%48.1%1.92
30 x 2428.75 x 22.7590.8%67.5%48.6%2.43
36 x 2434.75 x 22.7591.5%68.0%49.0%2.94

Airwise half-inch egg crate return core, 5/8 in frame flange. Free area is calculated geometry. Effective area applies a 0.72 contraction factor consistent with published industry observations — treat it as an engineering estimate, not a certified rating.

The free area of the identical product ranges from 46.6% to 68.0% depending only on how big you order it. The popular rule of thumb circulating on HVAC sizing sites — "most return air grilles have a free area of about 60 to 80 percent" — is roughly true at 12x12 and above, and badly wrong at 8x8 and below. If your job is full of 6x6 and 8x8 bath and bedroom returns, that rule of thumb is handing you a number about 40% too high.

This also explains something installers notice and designers rarely do: two small returns never equal one large return of the same total nominal area. Two 10x10 grilles give 200 in² nominal and 0.56 ft² of Ak. One 14x14 gives 196 in² nominal — slightly less — but 0.60 ft² of Ak. Same hole in the drywall, 7% more air path, one less trim ring to install. For guidance on laying out the return side as a system rather than grille by grille, see our return air grille sizing guide.

3. Ak Is a Calibration Constant, Not a Dimension

This is where most specifications go wrong at a deeper level. Engineers treat Ak as though it were a physical area that the manufacturer measured with a tape. It is not.

Dan Int-Hout, chief engineer at Krueger, wrote the reference document the industry still passes around on this. His description of Ak is unambiguous: it is "a constant, reflecting the ratio of sensed discharge velocity to the measured air quantity. It is not based on any physical dimensional relationships. Rather, it is dependent on the type of device used to measure the discharge velocity and the location and orientation of this device relative to airflows."

In other words: Ak is not a property of the grille. It is a property of the grille plus a named instrument plus a prescribed way of holding that instrument. Change any of the three and the number is void.

The named instruments are a matter of record. Early Ak factors specified an Alnor 2000 Series meter with a 2220A sensor tip. Later publications specified the Alnor 6000 Series with a 6070 tip. Both are mechanical vane anemometers that happened to average the thin, highly variable jet leaving a grille face in a repeatable way. The 2000 Series has not been sold for many years. Modern hot-wire and hot-film anemometers are more accurate in absolute terms but have no standardised tip geometry or shield design, and their readings change dramatically with proximity to a surface — which is precisely the measurement condition at a grille face.

The consequence, in Int-Hout's words: "while an Ak could be determined for one type of anemometer, it would not be valid for another."

So when a supplier hands you a neat Ak table covering 40 sizes of a product line, ask which instrument it was measured with. If the answer is not "Alnor 6000 with a 6070 tip", the table was either interpolated from geometry — which Int-Hout says is exactly what Ak is not — or copied from someone else's catalogue.

4. Why the Big Names Stopped Publishing Ak

Krueger's white paper states the position directly: "Until such a time as a single anemometer, and anemometer geometry, again becomes a defacto 'industry standard', manufacturers can not report area factors which can be used with any of the newer instrumentation types available."

You can verify the effect of that policy yourself. Titus publishes a 34-page Grilles and Diffusers Engineering Guidelines that covers isothermal jet zones, throw constants, comfort charts, NC selection, industrial grille sizing and return grille pressure — arguably the most complete GRD engineering reference the industry has. The phrases "free area" and "Ak factor" do not appear in it a single time. Where the equations need a discharge area, the document writes Ao = outlet effective area, with the parenthetical warning "this value may be less than the actual opening of the outlet", and then routes the reader to tabulated NC and pressure data instead.

That is the whole story in one observation. The serious engineering literature abandoned free area percentages and Ak for selection twenty years ago; the consumer-facing sizing web still runs on them. Titus's Method I for selecting an outlet size is by Noise Criteria — reading the tabulated outlet NC (which assumes 10 dB of room absorption at the observer) against the desired space NC. No area factor appears anywhere in that workflow.

The underlying test method is ANSI/ASHRAE Standard 70, Method of Testing the Performance of Air Outlets and Air Inlets. First published in 1972, revised in 1991 and 2006, and revised again as ASHRAE 70-2023 — the current edition. The 2023 revision broadened the standard to cover more device types and sizes, specified commercially available instruments with better accuracy, and tightened installation procedures so the test better reflects the device in its intended application. If a supplier cites "ASHRAE 70-2006" on a datasheet dated after 2023, that datasheet has not been revisited in a while.

5. Worked Example: The 49% Sizing Swing

A 1,200 CFM return in an open office, target 500 FPM. Three engineers, three answers.

MethodCalculationGrille selectedVerdict
A. Gross face velocity
(catalogue method)
1,200 ÷ 500 = 2.40 ft² nominal face24x24 (4.00 ft²)
→ 300 FPM actual
Correct. Matches the NC and pressure table.
B. Free area formula,
70% assumed
2.40 ÷ 0.70 = 3.43 ft² = 494 in²22x22 (484 in²)Coincidentally close — for the wrong reason.
C. Free area formula,
real 48% effective
2.40 ÷ 0.481 = 4.99 ft² = 719 in²30x24 (720 in²)49% more grille than method B, same job.

Methods B and C use the identical formula and differ only in the assumed percentage — and they land 49% apart in purchased area. That is the cost of treating a size-dependent, instrument-dependent number as a constant.

The error is not the percentage. The error is mixing denominators. Manufacturer NC and static pressure tables are already tabulated against nominal size and CFM, with the real blade geometry baked into the test. Apply a free area correction on top of a catalogue selection and you double-count the restriction; use the free area formula with a borrowed percentage and you are guessing at the very thing the catalogue already measured. Pick one denominator and stay inside it.

Sizing a specific job? Send us the CFM schedule and ceiling type and we will return nominal sizes, core dimensions and free area in square inches per size — not a blanket percentage. Request a grille schedule review →

6. What This Does to Noise

The free area question stops being academic the moment someone complains about whistling. Noise at a grille is driven by the velocity through the actual openings, not the velocity across the nominal face — and on small sizes those two numbers diverge violently.

Take a 6x6 bath return at 100 CFM. Gross face velocity is 100 ÷ 0.25 ft² = 400 FPM, which looks conservative on any selection chart. But the effective area of a 6x6 is 0.08 ft², so the air is actually moving at 1,190 FPM through the cells — roughly three times the number the designer wrote down, and comfortably into the range where a sharp-edged aluminum cell starts generating audible broadband noise.

The same 100 CFM through a 10x10 sees 0.28 ft² of effective area and 357 FPM through the cells. Same airflow, same product family, 70% lower velocity at the metal — because the fixed frame flange stopped being a significant fraction of the face. Upsizing the grille is almost always cheaper than chasing the noise downstream with a lined plenum or a silencer, and it is the recommendation we give even though the smaller grille is the cheaper part for us to ship.

If noise is already in the system rather than at the terminal, the fix is further upstream — see our HVAC noise control and duct silencer guide and the section on lined plenums in our plenum box guide.

One caution on pressure data, from Titus's own guidelines: for exhaust and return grilles, the published "negative static pressure" is a deliberately conservative design value. For actual pressure drop you subtract the velocity pressure from the reported figure. Designers who total the catalogue numbers straight down a long return path end up with a phantom pressure penalty and oversize the fan.

7. When Free Area Math Is the Right Tool

Free area is not useless — it is just being used in the wrong place. Hart & Cooley's technical FAQ draws the line exactly where we would: free area "should only be applied to natural/gravity air transfer situations, not when air is forced through by a fan."

That gives a clean decision rule:

ApplicationDriving pressureUse this
Door transfer grille, jump duct, undercut0.01–0.05 in wgFree area in in²
Passive relief / pressure equalisation openingGravity / stackFree area in in²
Combustion air / ventilation louver sizingGravityFree area in in² (code-driven)
Fan-driven return or exhaust grille0.05–0.25 in wgCatalogue NC + static pressure table
Supply diffuser or registerFanThrow / NC / Pt tables per ASHRAE 70
Balancing an installed systemFanFlow hood, or a project-derived Ak (section 10)

Note that the three rows where free area is the correct tool are also the three rows where a building code is likely to specify a minimum free area in square inches. That is not a coincidence — codes use free area precisely because it is geometry that an inspector can verify with a ruler, unlike Ak.

8. How to Write the Spec So You Get What You Calculated

After enough incoming drawings, the failure patterns repeat. Four changes to your schedule language eliminate most of them:

  • Specify free area in square inches, per size — never as a percentage. "Minimum 385 in² free area" is verifiable. "Minimum 60% free area" is ambiguous until someone states the denominator, and as section 2 shows, the honest answer varies by size anyway.
  • State the denominator explicitly. Write "free area ≥ X in², referenced to nominal duct opening" or "referenced to overall face". Two factories quoting the same drawing with different conventions will hand you parts that differ by 15%.
  • Call out core dimensions and blade pattern, not just the model. "20x20 egg crate, 1/2 in cell, 0.080 in rib, 5/8 in frame flange" is a specification that survives a change of supplier. A part number is not.
  • Give a CFM and an NC target instead of a velocity. The manufacturer selects against tested data; you get the performance rather than the arithmetic.

For custom sizes we return the calculated free area in square inches on the drawing itself, alongside the core dimensions, so your reviewer never has to reverse-engineer a percentage. Our return air grille and filter grille lines are built to order in 1-inch increments, which means the free area table in section 2 is a formula for us rather than a fixed catalogue.

9. What We Can and Cannot Certify

This is the part suppliers usually skip, so here it is plainly. There are three documents buyers regularly request from us that do not legitimately exist for this product category, from any factory:

  • An Ak factor for a custom size. A valid Ak requires an ASHRAE 70 laboratory test of that exact size with a named instrument in a prescribed orientation. Nobody runs a lab test for a one-off 17x23. If a factory emails you an Ak for a custom size within the hour, they interpolated from geometry — which is definitionally the one thing Ak is not.
  • An AHRI certified air performance rating for a grille, register or diffuser. AHRI's certification programmes cover VAV terminals, fan-coils and similar equipment; the VAV terminal programme explicitly does not extend to non-VAV diffusers, grilles and registers. ASHRAE 70 is a test method, not a certification scheme, so all GRD performance data in this industry is self-declared against a common procedure.
  • A single free area percentage covering a whole model range. As section 2 demonstrates, the number moves by 21 percentage points across the size range of one product. A supplier who gives you one number for the range has not calculated it.

What we can give you, on any size, is checkable: core dimensions from the actual drawing, blade or cell geometry with rib thickness, free area in square inches calculated from those dimensions, material and gauge, and our UL and CE documentation for the construction. Every one of those can be verified with calipers when the sample lands on your desk — which is the point.

Production specifics: aluminum extruded and stamped steel cores, 1-inch size increments, MOQ 100 pcs per size, first-article sample before every production run, and 25–35 day lead time from approved drawing at our 5,000 m² Dongyang plant. Buyers new to sourcing GRD from China will also want our HVAC parts sourcing and import guide.

10. Deriving Your Own Ak in 20 Minutes

If you need an area factor for balancing, the practical answer is to stop looking for it in a catalogue and make your own. This is Int-Hout's own recommendation: determine the airflow carefully for a single device with one sensor in one orientation, and apply that factor to the identical devices on the rest of the project.

  1. Pick one representative grille on a branch you can isolate, ideally mid-range in size rather than the smallest on the job.
  2. Establish true airflow independently — a pitot traverse in a straight duct section upstream, or a calibrated flow hood used within its accuracy band on a non-linear device.
  3. Take the face reading you will use all week: same anemometer, same tip, same standoff distance, same traverse pattern, sensor parallel to the mounting surface. Record the averaged velocity.
  4. Ak = true CFM ÷ sensed velocity. That number is now valid for that grille model, that size, that instrument and that technique — and nothing else.
  5. Re-derive for each distinct size and model on the project. The section 2 table shows why a factor from a 24x24 cannot be scaled to a 8x8 by area ratio.

And keep the error budget honest: Int-Hout notes that flow hood errors greater than 20% are not uncommon on linear diffusers, because a flow hood is not an absolute instrument and struggles with high-induction devices and long thin jets. If your commissioning spec demands ±5% on a linear slot, the spec is writing a cheque the instrument cannot cash. Our HVAC air balancing guide covers the traverse technique in more detail, and the linear slot diffuser design guide covers why those devices are the worst case for hood measurement.

Related Guides

Sources

  • Dan Int-Hout, Diffuser & Grille Area Factors, Krueger technical white paper — definition of Ak, Alnor 2000/6000 instrument history, egg crate effective free area, flow hood error range.
  • Titus, Grilles and Diffusers Engineering Guidelines (2018) — outlet effective area Ao, NC selection method, return grille negative static pressure convention.
  • Hart & Cooley, GRD Technical FAQs — free area and effective area definitions, gravity-transfer limitation.
  • ANSI/ASHRAE Standard 70-2023, Method of Testing the Performance of Air Outlets and Air Inlets — current test method edition.
  • AHRI certification programme scope — VAV terminals programme exclusions for non-VAV grilles, registers and diffusers.
05 · FAQ

Grille Free Area & Ak Factor — Frequently Asked Questions

What is the difference between free area and effective area (Ak) on a grille?▾

Free area is a geometric measurement — the total minimum area of the openings you could push a ruler through, sometimes called the see-through area. Effective area, or Ak, is not a geometric measurement at all. It is a calibration constant that relates the velocity a specific instrument senses at the face to the actual airflow through the device, published so that CFM = sensed velocity x Ak. Krueger chief engineer Dan Int-Hout states it plainly in the company white paper on area factors: the Ak value "is not based on any physical dimensional relationships." Free area is always larger than Ak, because air contracts and separates as it squeezes past the blades — the vena contracta effect. On our half-inch aluminum egg crate core the geometric free area of a 24x24 is about 67 percent of the nominal face, while the effective area is roughly 48 percent.

Why is the free area percentage different for different sizes of the same grille?▾

Because the frame is a fixed width and the face area is not. Our stamped-steel return grille frame has an inner flange of 5/8 inch on every side regardless of size, so it removes 1.25 inches from both the width and the height of the clear core. On a 24x24 that costs you 10 percent of the face. On a 6x6 it costs you 37 percent, because the same fixed border is being subtracted from a face that is 16 times smaller. Multiply the remaining core by the open fraction of the blade or cell pattern and the free area of the same product runs from about 47 percent at 6x6 up to about 68 percent at 36x24. There is no single free area percentage for a model — only a free area percentage for a model at a size.

Can you give me the Ak factor for a custom-size grille?▾

No, and you should be suspicious of any factory that says yes. A legitimate Ak is produced by testing one specific device at one specific size in an ASHRAE Standard 70 laboratory, with one specific probe held in one specific orientation. The original published Ak values in this industry were tied to the Alnor 2000 Series meter with a 2220A tip, later the Alnor 6000 Series with a 6070 tip. Neither instrument is in common use today, and modern hot-wire anemometers have no standardised tip geometry, so an Ak derived for one instrument is not valid for another. Krueger has stopped publishing area factors for exactly this reason. What we can give you for a custom size is the geometric free area in square inches, calculated from the actual drawing, plus the blade pattern and core dimensions so your balancer can derive a project-specific Ak on site.

What face velocity should I use to size a return air grille?▾

Use gross face velocity against the nominal size, and target 400 to 500 FPM for occupied spaces where noise matters, and up to 700 to 800 FPM for mechanical rooms, corridors and equipment returns where it does not. The critical rule is not the number, it is the denominator: gross face velocity is CFM divided by the full nominal face area, with no free area correction applied. Manufacturer NC and pressure tables are already tabulated against nominal size and CFM, so the geometry is baked in. If you apply a 60 or 70 percent free area correction on top of a catalogue selection you will double-count the restriction and oversize the grille.

When is the free area formula actually the right tool?▾

For openings with no fan behind them. Hart and Cooley state in their GRD technical FAQ that free area should be applied to natural or gravity air transfer situations, not where air is being forced through by a fan. That means transfer grilles between a bedroom and a hallway, door undercuts, jump duct terminations, passive relief openings and combustion air louvers — anywhere the driving pressure is a few hundredths of an inch of water column and you need to know the physical hole size. For a fan-driven supply or return on a tested product, the manufacturer NC and static pressure table beats any free area arithmetic you can do.

How much error does a flow hood introduce when I balance the system?▾

More than most specifications assume. Int-Hout notes that flow hood errors greater than 20 percent are not uncommon on linear diffusers, because a flow hood is not an absolute measuring instrument and performs poorly on high-induction devices and long narrow jets. The practical workaround he recommends is to determine your own area factor on the job: carefully measure true airflow through one device with one sensor in one fixed orientation, back-calculate the Ak for that combination, then apply it to the identical devices on the rest of the project. A project-specific Ak measured with your own instrument is more reliable than a catalogue Ak measured 30 years ago with an instrument you do not own.

Are grilles and diffusers AHRI certified for air performance?▾

Standalone grilles, registers and diffusers are not covered by an AHRI product performance certification programme. AHRI certifies VAV terminals, fan-coils and similar equipment, and the VAV terminal programme explicitly does not extend to non-VAV diffusers, grilles and registers. GRD performance data is produced under ANSI/ASHRAE Standard 70, which is a test method rather than a certification scheme, so the data is self-declared by each manufacturer against a common procedure. That is why two manufacturers can publish different numbers for visually identical products, and why comparing free area percentages across catalogues is close to meaningless unless both parties state the size and the denominator.

08 · The order desk

Need Free Area in Square Inches, Not a Blanket Percentage?

Send us your CFM schedule and we return nominal sizes, core dimensions and calculated free area per size. Aluminum and steel grilles built to order in 1-inch increments, MOQ 100 pcs, first article before every run.

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