🧴 Spray Foam Insulation Calculator

Spray Foam Insulation Calculator: Open-Cell vs Closed-Cell, Board Feet, R-Value by Thickness

Enter your insulation area and target thickness or target R-value. Compare open-cell (R-3.7 per inch) and closed-cell (R-6.5 per inch) side by side. Get board feet needed, R-value achieved, DIY two-component kit count by size, and a vapor barrier note for closed-cell at 2 inches. Application presets for walls, attic roof deck, rim joists, and crawlspace walls.

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Select open-cell (R-3.7 per inch), closed-cell (R-6.5 per inch), or compare both. Use an application preset or enter custom thickness. Switch to R-value mode to enter a target R-value and get the required thickness. Results show board feet, R-value achieved, DIY two-component kit count in four standard sizes, and a vapor barrier note for closed-cell at 2 inches.

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Board Feet by Foam Type

Open-Cell vs Closed-Cell Spray Foam: R-Value per Inch, Board Feet, Vapor Barrier, and US

Spray polyurethane foam (SPF) insulation is the highest-performance insulation product available for US residential and commercial construction. Unlike fiberglass batts or blown-in cellulose, spray foam expands on contact to fill cavities, gaps, and cracks completely, simultaneously providing both air sealing and thermal insulation in a single application. The result is a significantly more airtight building envelope than any other insulation product can achieve. This combination of air barrier and thermal barrier makes properly installed spray foam one of the highest-return energy investments available for US homeowners.

Two distinct chemistries are used in US spray foam applications, with dramatically different performance profiles. Open-cell foam (0.5 lb per cubic foot density) expands aggressively, fills cavities completely, is vapor permeable, and achieves R-3.7 per inch. Closed-cell foam (2.0 lb per cubic foot density) is denser, more rigid, vapor-resistant, and achieves R-6.5 per inch — nearly double the R-value per inch of open-cell. The right choice depends on the application, the climate zone, the available cavity depth, and whether a vapor retarder is needed.

Open-Cell vs Closed-Cell Spray Foam: Key Properties for US Applications

PropertyOpen-Cell (0.5 lb)Closed-Cell (2.0 lb)
R-value per inchR-3.7R-6.5
Typical cost (installed, per BF)$0.44 to $0.65$1.00 to $1.50
Vapor permeabilityPermeable (not a vapor barrier)Less than 1 perm at 2+ inches (Class II vapor retarder)
Air barrierYes (at 3.5 inches or more)Yes (at 1 inch or more)
Structural rigidity addedMinimalSignificant (adds racking resistance)
Moisture resistanceAbsorbs water if exposedResists water absorption
Expansion ratioUp to 100x original volumeUp to 40x original volume
Best US applicationsInterior wall cavities, attic floors, interior soundRim joists, crawlspace walls, roof deck, exterior walls

How the Spray Foam Calculator Works

Board feet = area (sq ft) x thickness (inches). This is the standard US unit for spray foam quantity: 1 board foot = 1 square foot of coverage at 1 inch thick. In thickness mode: board feet = area x thickness x waste factor. R-value = thickness x R-per-inch (open-cell: 3.7, closed-cell: 6.5). In R-value mode: required thickness = target_R / R_per_inch, then board feet = area x thickness x waste factor. DIY kit count = ceil(board_feet / kit_size) for each kit size. Vapor barrier note triggers when closed-cell thickness is 2 inches or more. The board foot is also used by professional spray foam contractors for bidding — knowing your board foot requirement is essential for getting accurate quotes.

3 Real Spray Foam Estimates

Example 1 — Rim Joists, Closed-Cell, 2 inches, Nashville, TN

Application: Sealing and insulating rim joists in a 1,500 sq ft ranch house. Total rim joist area (perimeter of 130 lin ft x typical 10-inch joist depth): approximately 108 sq ft. Closed-cell foam at 2 inches.

Board feet: 108 sq ft x 2 in = 216 BF raw. With 15% waste: 248 BF.

R-value: 2 in x 6.5 = R-13.

DIY kits: Two 200-BF two-component kits cover 400 BF total. 2 kits of 200 BF.

Vapor barrier note: At 2 inches of closed-cell, this assembly becomes a Class II vapor retarder (less than 1 perm). This is appropriate for a rim joist application where moisture control is important.

Example 2 — Attic Roof Deck, Open-Cell, 5.5 inches, Atlanta, GA

Application: Unvented attic created by spraying open-cell foam against the underside of the roof deck (between and over the rafters). Roof deck area: 2,400 sq ft. Open-cell at 5.5 inches to meet Georgia R-19 attic requirement for an unvented assembly.

Board feet: 2,400 sq ft x 5.5 in = 13,200 BF raw. With 15% waste (overhead application): 15,180 BF.

R-value: 5.5 in x 3.7 = R-20.35 (meets R-20 code minimum for unvented attic in Georgia).

Professional application: At 15,180 BF, this requires a professional spray foam contractor with a proportioner rig. DIY kits in 600 BF size: 26 kits at approximately $400 to $500 each = $10,400 to $13,000 in material alone. Professional installed cost (materials + labor) in the Atlanta market: typically $1.75 to $2.25 per BF for open-cell applied overhead = $26,565 to $34,155. The professional cost includes equipment, labor, and warranty.

Example 3 — 2×4 Wall Cavities, Closed-Cell vs Open-Cell Comparison, Denver, CO (Climate Zone 5)

Application: Exterior wall cavities in a 1,200 sq ft addition. Gross wall area: 800 sq ft. 2×4 framing (3.5-inch cavity). Question: which foam type fills the cavity with adequate R-value?

Open-cell at 3.5 inches: 800 x 3.5 = 2,800 BF x 1.10 waste = 3,080 BF. R-value: 3.5 x 3.7 = R-12.95 (just under R-13 code minimum — marginally short for Zone 5).

Closed-cell at 3.5 inches: 800 x 3.5 = 2,800 BF x 1.10 = 3,080 BF. R-value: 3.5 x 6.5 = R-22.75 (exceeds R-20 Zone 5 wall requirement significantly). Acts as vapor retarder.

Recommendation: For Denver Zone 5, closed-cell at 3.5 inches in 2×4 cavities achieves R-22.75, significantly exceeding code and eliminating the need for a separate vapor retarder. Open-cell at 3.5 inches only achieves R-13 and is vapor permeable, which may create condensation risk in Denver’s cold winters without an additional interior vapor control layer.

3 Expert Tips for Spray Foam Insulation

🧴 Tip 1: Board Feet Are the Universal Currency for Spray Foam — Always Use This Unit When Getting Bids

When US contractors give you a spray foam bid, they price the work in board feet — not square feet, not cubic feet, and not per bag. A board foot of spray foam is exactly 1 square foot of surface covered to 1 inch of thickness. If a contractor quotes you 500 board feet of closed-cell foam at $1.25 per board foot, you know the material plus labor cost will be approximately $625. This allows direct comparison between multiple contractors and between professional installation versus DIY two-component kits. For DIY projects using two-component kits (products like Foam it Green, Touch ‘n Foam Professional, or Froth-Pak), the kit sizes are labeled in board feet: a 15-board-foot kit covers 15 square feet at 1 inch, 7.5 square feet at 2 inches, or 5 square feet at 3 inches. Use this calculator to determine your total board feet requirement, then check it against the coverage chart printed on the specific kit you plan to purchase — DIY kit outputs vary by product line. The board foot volume gives you the information you need to compare kits from multiple brands and select the most cost-effective combination of kit sizes for your specific project.

🏠 Tip 2: Closed-Cell Foam at 2 Inches Creates a Vapor Barrier — This Changes Your Building Assembly Design

A critical and often misunderstood fact about closed-cell spray foam: at approximately 2 inches of thickness, closed-cell foam achieves a vapor permeance of less than 1 perm, meeting the definition of a Class II vapor retarder under the 2021 IRC. This has significant implications for the building assemblies where it is used. For rim joists and crawlspace walls: the 2-inch closed-cell layer is specifically the standard specification because the vapor retarder function is desired in these locations to prevent moisture migration from the soil or exterior. For exterior wall cavities: applying 2 or more inches of closed-cell foam on the interior face of the sheathing (between the studs) means the foam itself becomes the vapor control layer, eliminating the need for a separate poly vapor barrier or kraft-faced batts. For roof decks: closed-cell foam on the underside of the roof decking in an unvented attic assembly creates a vapor control layer immediately below the roof deck, which is the desired location to prevent wintertime condensation on the cold sheathing. Understanding the vapor behavior of your chosen foam type and thickness is essential for designing a building assembly that manages moisture correctly in your US climate zone. In warm-humid climates (Gulf Coast, Florida), vapor drive reverses in summer (moisture pushes from the hot exterior into the cool interior), and the vapor retarder placement for spray foam assemblies differs from cold-climate design. When in doubt about vapor control for your specific application and climate zone, consult buildingscience.com for US climate-specific assembly guidance.

⚠️ Tip 3: DIY Spray Foam Kits Require PPE, Temperature Control, and Ventilation — Do Not Skip Any of These

Two-component spray foam DIY kits are powerful products that can be used successfully for projects under 600 board feet by US homeowners who follow the manufacturer’s instructions carefully. However, they require precautions that are non-negotiable and that many DIYers discover only after a failed or dangerous application. Temperature: the A and B component cylinders must be at 70 to 80 degrees Fahrenheit at the time of application. Cold cylinders (below 60 degrees F) produce under-expanded, crumbly foam that does not cure properly and provides poor R-value. Warm the cylinders to room temperature in a heated space for 24 hours before use if they have been stored in a cold garage or vehicle. Temperature of the substrate (the surface being sprayed) also matters — do not spray onto surfaces below 40 degrees F. Ventilation: the isocyanate component of two-component foam is a respiratory sensitizer and potential carcinogen during the application period. Work in a space with fresh air circulation (open windows, fans) and wear a full-face respirator rated for isocyanates (not a dust mask) throughout the application and for 24 hours after spraying while the foam cures. PPE: chemical-resistant gloves, a Tyvek suit (foam is extremely difficult to remove from skin and clothing), and safety glasses are all required. Foam that contacts skin must be removed immediately with acetone or isopropyl alcohol before it cures — cured foam on skin requires mechanical removal, which is painful. For projects requiring more than 600 to 800 board feet, the complexity, equipment cost, PPE requirements, and health hazards of DIY application make professional installation more practical and often more cost-effective when total project cost including PPE and equipment is considered.

Frequently Asked Questions About Spray Foam Insulation

What is a board foot of spray foam?▼
A board foot (BF) of spray foam is the standard unit of volume used for spray foam quantification in the US. One board foot equals 1 square foot of coverage applied to 1 inch of thickness. So a 100-square-foot wall insulated to 3.5 inches requires 100 x 3.5 = 350 board feet. A 500-square-foot crawlspace wall insulated to 2 inches requires 500 x 2 = 1,000 board feet. DIY two-component kit sizes in the US market are labeled in board feet: common sizes include 15 BF (small repairs and gaps), 30 BF, 200 BF, and 600 BF for larger projects. Professional spray foam contractors also price work in board feet, so knowing your board foot requirement before getting bids allows you to compare prices directly across multiple contractors. The board foot unit also lets you calculate material requirements before choosing between open-cell and closed-cell products: if you have 1,000 board feet of project, the same board foot total applies to either foam type — but the R-value achieved differs significantly (open-cell: 1,000 BF over 500 sq ft = 2 inches = R-7.4; closed-cell: 1,000 BF over 500 sq ft = 2 inches = R-13).
What is the R-value of spray foam per inch?▼
Open-cell spray foam achieves approximately R-3.7 per inch of thickness. Closed-cell spray foam achieves approximately R-6.5 to R-7.0 per inch. These values are published by US manufacturers and tested according to ASTM standards. For practical US applications: open-cell at 3.5 inches (filling a 2×4 stud cavity completely) achieves approximately R-13. Open-cell at 5.5 inches (2×6 cavity) achieves approximately R-20. Closed-cell at 2 inches achieves R-13. Closed-cell at 3.5 inches achieves approximately R-22.75. Closed-cell at 1 inch achieves approximately R-6.5 — this is commonly used as a thermal break in conjunction with other insulation. The R-value advantage of closed-cell over open-cell is most significant in applications where cavity depth is limited: rim joists (typically 9.25 to 11.25 inches deep, but the practical spraying target is 2 to 3 inches), crawlspace walls (typically targeting 2 to 3 inches), and roof decks in unvented attic assemblies where the foam must achieve R-20 to R-25 within the rafter depth. In a rim joist or crawlspace, 2 inches of closed-cell achieves R-13 in a limited application area, while 2 inches of open-cell only achieves R-7.4 — requiring significantly more product to meet energy code minimums.
Should I use open-cell or closed-cell spray foam for rim joists?▼
Closed-cell is the standard specification for US rim joist insulation, and it is the recommendation of virtually all US building scientists and energy auditors. The reasons: rim joists are located at the top of the foundation wall, where they are exposed to cold exterior temperatures in winter (the rim joist is between the foundation and the floor system, directly exposed to the outdoors through the band board). The combination of cold temperatures and potential moisture migration from the concrete foundation makes closed-cell the appropriate choice. Two inches of closed-cell on the rim joist provides R-13, meets the Class II vapor retarder requirement (preventing moisture from the foundation from migrating into the floor framing), and fills the rim joist bay completely, blocking air infiltration. Open-cell foam at 2 inches on a rim joist only achieves R-7.4 and remains vapor permeable, which can lead to condensation on the cold rim joist surface in winter. For most US climate zones, the standard rim joist specification is 2 to 3 inches of closed-cell spray foam, applied from the interior after the subfloor is installed. In hot-humid climate zones (Florida, Gulf Coast), the vapor control consideration is different — some building scientists in these zones prefer open-cell for rim joists to allow some vapor drying toward the interior. This is a nuanced climate-specific decision; when in doubt, consult a local energy auditor or building science professional for your specific US climate zone.
How do I calculate how many spray foam kits I need?▼
Calculate your total board feet needed: area (sq ft) x thickness (inches) x waste factor (1.10 to 1.20 depending on surface irregularity). Divide by the kit size to get the number of kits, rounding up. For example: 300 sq ft of rim joist area at 2 inches = 600 BF raw. With 15% waste: 690 BF total. Using 200-BF kits: ceil(690/200) = 4 kits. Using 600-BF kits: ceil(690/600) = 2 kits. The larger kit sizes are more economical per board foot but require larger upfront investment. For US home improvement projects, the most common kit sizes for DIY applications are 200 BF (ideal for rim joists in a typical 1,500-2,000 sq ft US house) and 600 BF (for larger projects like partial crawlspace walls or attic roof decks). Always buy one extra kit beyond your calculated requirement to account for yield variation between kits and the waste that occurs while priming the spray nozzle at the start of each kit. US two-component kit prices in 2026: 30 BF kits approximately $125 to $160, 200 BF kits approximately $300 to $450, 600 BF kits approximately $700 to $950 depending on product type (open-cell vs closed-cell).
Can spray foam be used as the only insulation in a wall?▼
Yes, spray foam can be installed as the sole insulation in a wall cavity, and this is actually one of the most effective insulation assemblies available for US residential construction. When the entire stud bay is filled with open-cell or closed-cell foam, the foam encapsulates the studs and eliminates thermal bridging through the framing members — an issue that affects fiberglass and cellulose installations where foam does not cover the studs. In a 2×4 wall at 16-inch OC framing, open-cell foam filling the entire 3.5-inch cavity achieves approximately R-13 in the cavity, with no gaps or voids that create localized air leakage or thermal bridging issues. Closed-cell in the same 2×4 cavity achieves approximately R-22.75, well exceeding the R-13 to R-20 code requirement for most US climate zones. Spray foam walls also achieve dramatically better airtightness than batt-insulated walls, which translates to better effective R-value performance in real-world conditions. The trade-off is cost: a 2×4 wall insulated with closed-cell spray foam at $1.25 per board foot installed costs approximately $1.50 to $2.00 per square foot just for insulation, compared to $0.30 to $0.50 per square foot for standard R-13 batt insulation. Many US custom home builders use a hybrid approach: 1 to 2 inches of closed-cell foam on the interior face of the exterior sheathing (for air sealing, vapor control, and R-6 to R-13), with standard batt insulation filling the remainder of the cavity — achieving the best attributes of both systems at a lower cost than full-cavity closed-cell.
Is spray foam insulation worth the cost vs fiberglass batts?▼
For specific applications, absolutely — and for whole-house insulation, it depends on your climate and priorities. The best-value applications for spray foam in a US home, in order of typical payback: rim joists (almost always worth it — small area, high heat loss per square foot, difficult to insulate with batts, closed-cell spray is the professional standard), crawlspace walls (closed-cell on crawlspace walls creates a conditioned crawl that dramatically improves moisture control, air quality, and floor warmth), attic air sealing (using canned or small-kit foam to seal all penetrations and bypasses before installing blown-in or batt insulation is high-value), and exterior wall cavities in new construction (spray foam is most cost-competitive in new construction where the stud bays are open and the foam can be sprayed in a single pass by a professional). For a whole-house retrofit, full-cavity spray foam in existing walls typically requires cutting the siding (to drill injection holes) or opening the interior walls, which dramatically increases cost and disruption. In that scenario, blown-in insulation through small holes in the siding is usually more practical and cost-effective than spray foam for wall retrofits. The best use of spray foam in an existing US home retrofit is typically limited to the high-impact, low-volume locations: rim joists, attic bypasses, crawlspace walls, and any specific air leakage paths identified by a blower door test.
How long does spray foam insulation last?▼
Both open-cell and closed-cell spray foam insulation are rated for the lifetime of the building when properly installed and protected from physical damage and prolonged UV exposure. The polyurethane chemistry of cured spray foam is chemically stable and does not degrade under normal interior building conditions. Unlike fiberglass batts, which can be physically disturbed and lose R-value from compression, or cellulose, which can settle over decades, properly installed spray foam maintains its R-value indefinitely. The qualifier is UV exposure: uncured and cured spray foam degrades with prolonged exposure to direct sunlight (UV light breaks down the polyurethane surface). In applications where spray foam is exposed to light — an unfinished basement rim joist, an attic roof deck — the surface develops a yellowish-orange discoloration and becomes friable over years. This surface degradation does not significantly affect the thermal or air barrier performance of the foam beneath the surface layer, but it can create airborne particulates as the degraded surface breaks down. For any spray foam application that will be exposed to light for more than a few months, covering the foam with a thermal barrier (drywall, rigid fiberglass board, or other code-approved covering) is recommended both to protect the foam and to meet the fire protection requirements of the 2021 IRC, which requires a 15-minute thermal barrier over spray foam in habitable spaces.

Related Insulation Calculators

Editorial Standards and Legal Disclaimer

Board feet = area x thickness x waste_factor. In R-value mode: thickness = target_R / R_per_inch (open-cell 3.7, closed-cell 6.5). R-value = thickness x R_per_inch. Kit counts = ceil(board_feet / kit_size). Vapor barrier note triggers when closed-cell thickness is 2 inches or more (Class II vapor retarder per IRC). R-value and yield data based on published US manufacturer specifications for two-component open-cell (0.5 lb/cu ft) and closed-cell (2.0 lb/cu ft) spray polyurethane foam. Actual yields vary by temperature, substrate condition, and applicator technique. Always verify board feet yield on the specific product label. Two-component spray foam is a hazardous material — use full PPE as directed. For building science guidance visit buildingscience.com. For EPA spray foam guidance see epa.gov. Last reviewed: August 2026.