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Beam Size Chart 2026 – Dimensions, Spans & Load Guide

Beam Size Chart – Steel, Concrete & Wood Beam Dimensions | ConcreteCalculate.com
Steel, Concrete & Wood Beam Reference

Beam Size Chart
Dimensions, Spans & Load Guide

Complete beam reference for contractors and builders — standard sizes, spans, load capacities, materials, and application guidance for steel, concrete, and wood beams.

Steel W/S/H Shapes LVL & Glulam Sizes Span Reference Tables Worked Examples 📅 Last Updated: August 2026
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Important: Planning Reference Only

All sizes, spans, and load figures on this page are general planning references based on common industry practice. Actual beam selection must account for site-specific loads, material grade, support conditions, and local building codes — always confirm with a licensed structural engineer before construction.

⭐ Master Beam Size Chart

Complete overview showing standard beam sizes, spans, materials, and applications across residential, commercial, and structural construction.

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How to Read This Chart

Beam sizing depends on span, load, material, and support conditions working together — no single dimension tells the whole story. Once you have a candidate size, verify it with our Beam Size Calculator or Concrete Beam Calculator.

Beam TypeCommon SizesTypical Span RangeCommon Applications
Reinforced Concrete9″×12″ to 15″×24″10–25 ftResidential and commercial floors, foundations
Steel W-ShapeW6x9 to W18x5010–30 ftCommercial floors, garages, long spans
Steel S-ShapeS6 to S2410–25 ftLegacy structural, industrial framing
LVL Beam7¼” to 16″ depth8–24 ftResidential floors, garage headers
Glulam Beam3⅛”–6¾” width, 9″–24″ depth10–30 ftExposed beams, vaulted ceilings, commercial
Solid/Built-Up WoodDouble 2×8 to Triple 2×126–14 ftResidential floors, decks, porches

⭐ Beam Size by Material

Comparing beam types and common sizes across the primary structural material categories.

Beam TypeCommon SizesTypical Applications
Reinforced Concrete Beams9″×12″ to 18″×24″Floors, foundations, structural frames
Steel I-Beams (S-Shapes)S3 to S24Legacy industrial and structural framing
Wide Flange (W) BeamsW4x13 to W44x335Commercial and residential structural framing
H-BeamsHP8 to HP14 (bearing piles), wide W-shapesHeavy structural columns, foundations, piles
S-BeamsS6 to S20Older structures, some industrial applications
LVL Beams1¾” to 7″ width, 7¼” to 24″ depthResidential floors, headers, garage openings
Glulam Beams3⅛” to 8¾” width, 9″ to 30″+ depthExposed structural beams, long spans
Solid Timber Beams4×6 to 8×12 (nominal)Traditional framing, exposed beams
Engineered Wood Beams (I-Joists)9¼” to 16″ depthFloor and roof framing systems
Infographic comparing four common beam materials used in construction: steel W-beam, LVL beam, glulam beam, and reinforced concrete beam. The chart highlights each beam's characteristics, advantages, cross-sectional shape, strength, fire resistance, cost, and common applications to help builders choose the right structural beam.

⭐ Beam Size by Construction Application

Matching beam type and size to common project categories.

ProjectRecommended Beam TypeTypical Beam Size
Residential FloorsLVL or built-up woodDouble 2×10 to 11⅞” LVL
Roof BeamsGlulam or LVL3⅛”×9″ to 5⅛”×15″
Garage OpeningsSteel W-shape or LVLW8x18 or 11⅞”–14″ LVL
DecksPressure-treated woodDouble/Triple 2×10–2×12
PatiosWood or steelDouble 2×8–2×10
PorchesWood or LVLDouble 2×8–2×10
BasementsSteel W-shape or reinforced concreteW8x18–W10x22 or 9″×12″ RC
Commercial BuildingsSteel W-shapeW10x22 to W18x50
WarehousesSteel W-shape or glulamW12x26 to W24x68
Industrial StructuresSteel W-shape or H-shapeW14x30 and larger

Reinforced Concrete Beam Size Chart

Common residential reinforced concrete beam sizes by span and typical reinforcement.

Beam WidthBeam DepthTypical SpanTypical Reinforcement
9 in (230 mm)12 in (300 mm)10–12 ft4 bars, 12mm–16mm
9 in (230 mm)15 in (375 mm)12–15 ft4–6 bars, 12mm–16mm
12 in (300 mm)18 in (450 mm)15–20 ft6 bars, 16mm–20mm
12 in (300 mm)24 in (600 mm)20–25 ft6–8 bars, 20mm–25mm

A common rule of thumb estimates concrete beam depth as span divided by 12 to 15; verify reinforcement with our Rebar Size Chart and Rebar Grade Chart.

⭐ Steel I-Beam Size Chart

Standard AISC steel shapes with depth, width, and weight per foot for common construction sizes.

DesignationShapeDepthFlange WidthWeight per Foot
W6x9W Shape5.90 in3.94 in9 lb/ft
W8x18W Shape8.14 in5.25 in18 lb/ft
W10x22W Shape10.17 in5.75 in22 lb/ft
W12x26W Shape12.22 in6.49 in26 lb/ft
W14x30W Shape13.84 in6.73 in30 lb/ft
W18x50W Shape17.99 in7.50 in50 lb/ft
S6x12.5S Shape6.00 in3.33 in12.5 lb/ft
S12x31.8S Shape12.00 in5.08 in31.8 lb/ft
HP10x42HP Shape (bearing pile)9.70 in10.08 in42 lb/ft
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Reading a Steel Designation

In “W8x18,” the W identifies the shape family (wide flange), the 8 is the approximate nominal depth in inches, and the 18 is the weight per linear foot in pounds — not a fixed physical dimension.

H-Beam vs I-Beam Comparison

Two of the most searched structural steel terms — understanding the practical differences.

FactorH-Beam (Wide Flange/W)I-Beam (S-Shape)
ShapeWide, parallel flangesNarrower, tapered flanges
DimensionsFlange width often close to depthFlange width notably less than depth
StrengthHigher strength-to-weight, resists bending and lateral loads wellGood bending resistance, weaker under lateral/torsional load
ApplicationsColumns, beams, general structural framingLegacy structural framing, some industrial uses
AdvantagesVersatile, widely available, efficient material useSimple shape, historically common
LimitationsCan be heavier for equivalent depth in some casesLargely superseded by W-shapes in modern construction

LVL Beam Size Chart

Common LVL (Laminated Veneer Lumber) depths and typical residential spans.

LVL DepthTypical Span (planning reference)Residential Applications
7¼”Up to 10 ftShort headers, small openings
9¼”10–14 ftFloor beams, medium headers
11⅞”14–18 ftGarage headers, floor beams
14″18–22 ftLong floor spans, larger openings
16″20–24 ftExtended spans, great room floors

Glulam Beam Size Chart

Common glued laminated timber sizes for exposed and long-span structural applications.

WidthDepthCommon Span (planning reference)Typical Uses
3⅛”9″–12″10–16 ftResidential roof beams
5⅛”12″–18″16–24 ftVaulted ceilings, exposed beams
6¾”18″–24″24–30 ftCommercial and heavy residential spans
8¾”24″–30″+30 ft+Large commercial and industrial structures

Wood Beam Size Chart

Common built-up and solid timber beam configurations for residential use.

ConfigurationTypical Span (planning reference)Common Residential Uses
Double 2×8Up to 8 ftShort floor spans, porches
Double 2×108–10 ftStandard floor beams, decks
Double 2×1210–12 ftLonger floor spans, larger decks
Triple Members (2×10/2×12)12–14 ftHeavier loads, wider spacing
Solid Timber (6×10, 8×12)10–16 ftTraditional framing, exposed beams

⭐ Beam Size by Span

General planning reference matching clear span to typical beam size across materials.

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Planning Reference Only

Actual beam selection depends on design loads, material properties, support conditions, applicable building codes, and engineering calculations. This table is a general starting point, not a design specification.

Clear SpanTypical Beam Size (Steel)Typical Beam Size (Wood/LVL)
6 ftW6x9Double 2×6
8 ftW6x9Double 2×8
10 ftW8x18Double 2×10 / 9¼” LVL
12 ftW8x18Double 2×12 / 11⅞” LVL
14 ftW10x22Triple 2×12 / 11⅞” LVL
16 ftW10x2214″ LVL
18 ftW12x2616″ LVL
20 ftW12x2616″+ LVL or glulam
24 ftW14x30Glulam recommended
30 ftW16x40 or largerGlulam or steel recommended

Beam Size by Floor Load

Beam recommendations vary based on the type and intensity of anticipated floor loads.

Load CategoryTypical Live LoadRecommended Beam Approach
Residential Floors40 psfStandard wood or LVL beams
Roof Loads20–30 psf (varies by snow/region)Lighter wood, LVL, or glulam beams
Storage Areas125 psfSteel or heavy timber beams
Commercial Floors50–100 psfSteel W-shapes, reinforced concrete
Industrial Floors150–250+ psfHeavy steel W-shapes, engineered design

Verify floor load capacity with our Slab Load Calculator and check deflection with the Concrete Slab Deflection Calculator.

Beam Size by Roof Application

Roof beam requirements vary significantly by roof shape and opening configuration.

Roof TypeTypical Beam Approach
Flat RoofsSteel W-shape or LVL, sized for full snow/live load
Pitched RoofsRidge beams in glulam or LVL, ridge board for simple framing
Vaulted CeilingsExposed glulam beams for structural and aesthetic function
Roof Openings (skylights, dormers)Doubled headers in LVL or engineered lumber around opening

Beam Size by Deck Construction

Deck beam sizing depends on joist span, post spacing, and elevation.

Deck TypeTypical Beam Size
Residential DecksDouble or triple 2×10 (pressure-treated)
Elevated DecksTriple 2×10–2×12 or steel beam for higher loads
Covered DecksSized larger for added roof dead load, often triple 2×12
BalconiesSteel or engineered wood, cantilever design requires engineering

Beam Size by Garage Door Opening

Common header/beam sizes by garage door width — verify with engineered calculation.

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Planning Reference Only

These are general planning references. Garage headers carry significant roof and wall load — engineered verification is strongly recommended before construction.

Opening WidthTypical Beam Size (planning reference)
8-ft OpeningDouble/triple 2×10 or 9¼” LVL
10-ft Opening11⅞” LVL or W6x9 steel
12-ft Opening11⅞”–14″ LVL or W8x18 steel
16-ft Opening14″–16″ LVL or W8x18–W10x22 steel
18-ft Opening16″ LVL or W10x22 steel

Beam Size by Load Capacity

How beam material, span, shape, and support conditions combine to determine capacity.

Load CategoryTypical Beam Examples
Light LoadsDouble 2×8 wood, 7¼” LVL, W6x9 steel
Medium LoadsDouble 2×10–2×12, 11⅞” LVL, W8x18–W10x22
Heavy LoadsGlulam, W12x26 and larger steel shapes
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What Drives Load Capacity

Beam material determines strength per unit area, span dictates bending moment, section shape governs stiffness (moment of inertia), and support conditions (simple span vs cantilever) change how load transfers to the structure. Check bearing pressure with our Concrete Bearing Pressure Calculator.

Beam Size by Building Type

Typical beam categories by overall building classification.

Building TypeTypical Beam Approach
HousesWood, LVL, or light steel (W6–W8)
GaragesLVL or W6x9–W8x18 steel
Pole BarnsSolid timber or glulam
WarehousesW12x26 to W24x68 steel
Office BuildingsW10x22 to W18x50 steel, reinforced concrete
Industrial FacilitiesW14x30 and larger, HP shapes for foundations

Beam Dimensions Chart

Comparing key structural dimensions across major beam categories.

Beam CategoryBeam DepthBeam WidthFlange WidthWeb Thickness
Steel W8x188.14 in5.25 in0.23 in
Steel W12x2612.22 in6.49 in0.23 in
Reinforced Concrete12–24 in9–15 in
LVL Beam7¼–16 in1¾–7 in
Glulam Beam9–30+ in3⅛–8¾ in

Steel Beam Designations Chart

Understanding common AISC steel shape designation letters.

DesignationShape NameWhat It Represents
WWide FlangeParallel flange faces, most common modern structural shape
SStandard I-BeamTapered flanges, narrower than W-shapes, largely legacy use
MMiscellaneous ShapeLighter shapes not classified as W, S, or HP
HPBearing Pile ShapeNear-equal flange and web thickness, used for foundation piles
CChannelC-shaped cross-section, used for framing and bracing

⭐ Beam Selection Guide

Quick decision reference matching project type to recommended beam with reasoning.

ProjectRecommended BeamWhy
Residential FloorDouble 2×10 or 11⅞” LVLCost-effective, meets typical residential spans
RoofGlulam or LVL ridge beamHandles snow/live load with exposed aesthetic option
Garage OpeningLVL or W8x18 steelSupports roof/wall load over wide opening
DeckPressure-treated double/triple 2×10Weather-resistant, standard residential capacity
Commercial BuildingW10x22 to W18x50 steelHigher load capacity for commercial occupancy
WarehouseW12x26 and largerLong clear spans, heavy storage loads
Industrial StructureW14x30+ or HP shapesHandles heaviest structural and foundation loads

For general project planning, see our How to Calculate Concrete guide and Concrete PSI Guide.

Beam Support & Bearing Length Guide

Minimum bearing requirements and common end support types.

Support TypeTypical Minimum Bearing LengthNotes
Wood-to-Wood1.5 inStandard for light residential beams
Steel Seats/Brackets2–3.5 inUsed for LVL and steel beam connections
Concrete Supports3–4 inCommon for beam pockets in concrete walls
Masonry Supports3–4 inSee our Masonry Block Size Chart for CMU wall bearing details

When beams bear on reinforced concrete, cross-check reinforcement cover using our Concrete Cover Chart.

⭐ Visual Beam Size Guide

Engineering diagrams showing labeled cross-sections of common beam types.

Construction infographic showing common beam types and their cross-sections, dimensions, and applications. Includes reinforced concrete beam, steel I-beam (W-beam), H-beam vs I-beam comparison, LVL (laminated veneer lumber) beam, glulam (glued laminated timber) beam, and solid timber beam with labeled width, depth, flange, web, span, and bearing dimensions for structural design reference.

Common Beam Selection Mistakes

Avoiding these errors prevents structural failures and costly rework.

Choosing Beam Size Based Only on Span

Span alone does not determine beam size — load, material, and support conditions all factor into a safe design.

Ignoring Live and Dead Loads

Failing to account for both permanent (dead) and variable (live) loads can lead to undersized, unsafe beams.

Insufficient Bearing Length

Beams resting on too little bearing surface can crush the support material or fail at the connection.

Improper Beam Orientation

Installing a beam on its weak axis dramatically reduces load capacity compared to proper orientation.

Overlooking Deflection Limits

A beam may be strong enough to avoid failure but still deflect excessively, causing cracked finishes or bouncy floors.

Assuming All Beam Materials Perform the Same

Steel, wood, LVL, and concrete beams behave very differently under load, fire, and moisture — material choice matters as much as size.

Skipping Engineered Verification

Using chart-based estimates without engineering sign-off on structural beams can violate code and create liability risk.

Contractor Worked Examples

Real-world beam selection scenarios for common project types. Pair these with our Beam Size Calculator and How to Calculate Concrete guide.

1

Garage Door Opening

Given: 12-ft garage door opening, single-story roof load
1
Select 11⅞” to 14″ LVL as a planning-reference header size.
2
Verify with an engineered header calculation or the Beam Size Calculator before finalizing.
Result: 11⅞”–14″ LVL header (verify with engineer)
2

Warehouse Beam

Given: 24-ft clear span, heavy storage load
1
Select W14x30 steel beam as a planning-reference starting point.
2
Confirm bearing pressure on supports with the Concrete Bearing Pressure Calculator and soil capacity with the Soil Bearing Capacity Calculator.
Result: W14x30 steel beam (engineered verification required)

Frequently Asked Questions

How do I choose the correct beam size?
Beam size depends on span length, live and dead loads, material type, support conditions, and deflection limits — always verify with an engineered calculation or local building code.
What is the difference between an I-beam and an H-beam?
I-beams (S-shapes) have tapered, narrower flanges, while H-beams (W-shapes) have wider, parallel flanges offering greater strength for combined loads.
What beam size is needed for a 20-foot span?
A 20-foot span typically requires a W10x22 to W12x26 steel beam or equivalent LVL/glulam, though exact sizing depends on load and engineering verification.
What is an LVL beam?
LVL (Laminated Veneer Lumber) is an engineered wood beam made from thin wood veneers bonded together, offering more consistent strength than solid sawn timber.
Is a steel beam stronger than a wood beam?
Pound for pound, steel beams generally offer higher strength and longer spans than wood beams of similar depth.
What beam should I use for a garage opening?
Garage door openings of 8 to 16 feet commonly use LVL beams, steel W-shapes, or engineered headers sized per the specific opening and roof load.
What is the most common residential beam size?
Double 2×10 or double 2×12 built-up wood beams are among the most common residential floor beam sizes for spans under 12 feet.
How much weight can a beam support?
Load capacity depends on beam material, depth, span, and support conditions — larger steel W-shapes support significantly more than equivalent-depth wood beams.
What is beam bearing length?
Bearing length is the minimum length a beam must rest on its support to safely transfer load, typically 1.5 to 4 inches depending on material.
What beam is best for decks?
Pressure-treated double or triple 2×10/2×12 wood beams are most common for residential decks.
How deep should a concrete beam be?
Reinforced concrete beam depth is commonly estimated as span divided by 12 to 15, giving typical residential sizes of 9×12 to 12×18 inches.
What is a W-beam?
A W-beam (wide flange) is a steel beam shape with parallel flange faces, the most commonly specified structural steel shape under ASTM A992.
What is the difference between a W-beam and an S-beam?
W-beams have wider, flat parallel flanges for general structural use, while S-beams have narrower, tapered flanges and are used less frequently today.
When do I need a structural engineer for beam selection?
A structural engineer should be consulted for any load-bearing beam replacement, long spans, unusual loading, or when code requires stamped calculations.
Can I replace a wood beam with a steel beam?
Yes, steel beams can often replace wood beams for longer spans or higher capacity, but connections and bearing points must be re-evaluated by an engineer.

📄 Download Beam Size Chart PDF

Get a print-ready engineering reference including beam size tables, span reference tables, material comparisons, beam designation guide, structural diagrams, selection flowchart, and field-ready contractor reference.

Beam size tables Span reference tables Material comparisons Beam designation guide Structural diagrams Selection flowchart

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