Sheet Metal Hole Size Minimum Feature Chart

Use this sheet metal hole size and minimum feature chart to establish conservative first-pass dimensions for laser-cut holes, punched holes, slots, edge ligaments, bend clearances, tabs, and notches. The chart separates broadly portable DFM rules from process- and tooling-specific limits so a feature that is technically possible is not mistaken for a stable production recommendation.

Sheet Metal Hole Size & Minimum Feature Quick Chart

Use actual material thickness—not a nominal gauge number—as T. Where a distance is described as clear, measure from the nearest cut edge of one feature to the nearest edge of the next feature, not from centerline to centerline.

Feature or checkEarly DFM starting pointMeasurement basisPractical note
Laser-cut round hole D >= T Finished nominal diameter Conservative cross-supplier rule; a validated fiber-laser process may go below T
Laser-cut slot S >= T Minimum clear slot width Narrow slots are sensitive to pierce size, heat input, lead-in location, dross, and distortion
Punched hole, aluminum, non-guided tool D >= 0.75T Punch diameter or narrowest tool width Mate published ratio; confirm tool availability, guidance, stripping, and maintenance
Punched hole, mild steel, non-guided tool D >= 1.0T Punch diameter or narrowest tool width Good general punching screen for maintained standard tooling
Punched hole, stainless steel, non-guided tool D >= 2.0T Punch diameter or narrowest tool width Higher load and punch-breakage risk require a larger ratio
Punched hole, aluminum, fully guided tool Published guidance can reach D >= 0.5T Tool-specific Requires a compatible fully guided tooling family and process review
Punched hole, mild steel, fully guided tool Published guidance can reach D >= 0.75T Tool-specific Do not assume the ratio applies to ordinary non-guided tooling
Punched hole, stainless steel, fully guided tool Published guidance can reach D >= 1.0T Tool-specific Confirm material strength, die clearance, press alignment, and tool life
Punched hole to free edge Clear ligament E >= 2T Hole edge to sheet edge Reduces edge bulging, breakout, tearing, and distortion
Between punched holes Clear web W >= 2T Hole edge to hole edge Protects the narrow web and reduces interaction between hits
Round hole to bend H >= R + 2.5T Hole edge to bend tangent line This chart uses an edge-to-tangent convention; confirm the supplier's bend-line convention
Slot to bend B_s >= R + 4T Slot edge to bend tangent line This chart uses an edge-to-tangent convention; slots interact with a larger deformation zone
Notch width One general DFM starting point: N >= 1.5T Narrowest clear notch width Supplier guides vary; confirm the cutting process, deburring method, and feature function
Notch length Width-based slenderness check: L_n <= 5N Length relative to notch width Some guides use thickness-based limits instead; state and confirm the selected convention
Tab width B_t >= max(2T, 3.2 mm) Narrowest tab width General DFM reference; confirm if the tab is structural, welded, or repeatedly handled
Tab length L_t <= 5B_t Length relative to tab width Long slender tabs can twist, bow, or overheat
Inside notch corner radius Start at r >= 0.5T Internal cut radius A radius reduces stress concentration and avoids an artificially sharp laser corner
Self-clinching hardware hole Use the exact manufacturer series value Finished mounting-hole diameter and tolerance Thread size alone does not define the correct clinching hole
Drilled or reamed precision hole No universal D:T ratio Finished diameter, tolerance, position, and surface requirement Use machining when fit, true position, cylindricity, or surface quality controls the design

Where:

  • T = actual material thickness
  • D = nominal round-hole diameter
  • S = minimum slot width
  • E = clear ligament from a hole edge to a free sheet edge
  • W = clear web between adjacent hole edges
  • R = specified inside bend radius
  • H = clear distance from a round-hole edge to the bend tangent line
  • B_s = clear distance from a slot edge to the bend tangent line
  • N = notch width
  • B_t = tab width

These dimensions solve different problems. The hole-size ratio protects the cutting or punching process; the edge and web rules preserve surrounding material, the bend-distance rules keep features outside the forming deformation zone.

How to Use This Minimum Feature Chart

Apply the chart in the following order:

  1. Specify the material grade or alloy, temper or condition, and actual thickness.
  2. Identify whether the feature will be laser cut, punched, drilled, reamed, or selected by the fabricator.
  3. Calculate the minimum hole or slot dimension for that process.
  4. Round upward to an available punch, drill, reamer, or practical programmed diameter.
  5. Check the clear material around the feature: edge ligament, hole-to-hole web, and nearby notches or slots.
  6. Check the distance from the feature edge to the bend tangent line using the intended inside radius.
  7. Decide whether the feature is a clearance opening or a functional precision bore.
  8. Define diameter, tolerance, position, datums, burr direction, finish condition, and inspection method where function requires them.

A minimum-size feature can pass one check and still fail another. For example, a 2.0 mm laser-cut hole in 2.0 mm sheet satisfies D >= T, but it may still distort if placed inside the bend zone or break out if too close to an edge.

Converting clear distances to drawing dimensions

If a drawing dimensions a hole from its center, convert the clear-ligament rules explicitly.

For a hole center to a free edge:

C_e >= (D / 2) + 2T

For the center-to-center pitch between two holes:

P >= (D_1 / 2) + (D_2 / 2) + 2T

For a round-hole center to the bend tangent line:

C_b >= (D / 2) + R + 2.5T

Where C_e is center-to-edge distance, P is hole pitch, and C_b is hole-center-to-bend-tangent distance.

For two equal 4.0 mm holes in 2.0 mm sheet, the early punched-feature checks give:

  • Center to free edge: C_e >= 2.0 + 4.0 = 6.0 mm (0.236 in)
  • Hole center-to-center pitch: P >= 2.0 + 2.0 + 4.0 = 8.0 mm (0.315 in)
  • With an inside bend radius of 2.0 mm, center to bend tangent: C_b >= 2.0 + 2.0 + 5.0 = 9.0 mm (0.354 in)

State the measurement origin on the drawing. A note such as “6 mm from edge” is ambiguous unless it is clear whether the dimension controls the hole center or the remaining ligament.

Minimum Punched Hole Size by Material and Thickness

The table below calculates non-guided punch starting diameters from Mate’s published ratios. Aluminum values are rounded upward to the next 0.1 mm. Metric values control; inch equivalents are rounded to the nearest 0.001 in for reference and should not be used to infer a tighter manufacturing tolerance. These are calculations, not a catalog of available punch sizes and not a guarantee that a particular press can use the resulting tool.

Sheet thickness TAluminum at 0.75TMild steel at 1.0TStainless steel at 2.0T
0.8 mm (0.031 in) 0.6 mm (0.024 in) 0.8 mm (0.031 in) 1.6 mm (0.063 in)
1.0 mm (0.039 in) 0.8 mm (0.031 in) 1.0 mm (0.039 in) 2.0 mm (0.079 in)
1.2 mm (0.047 in) 0.9 mm (0.035 in) 1.2 mm (0.047 in) 2.4 mm (0.094 in)
1.5 mm (0.059 in) 1.2 mm (0.047 in) 1.5 mm (0.059 in) 3.0 mm (0.118 in)
2.0 mm (0.079 in) 1.5 mm (0.059 in) 2.0 mm (0.079 in) 4.0 mm (0.157 in)
3.0 mm (0.118 in) 2.3 mm (0.091 in) 3.0 mm (0.118 in) 6.0 mm (0.236 in)
4.0 mm (0.157 in) 3.0 mm (0.118 in) 4.0 mm (0.157 in) 8.0 mm (0.315 in)
6.0 mm (0.236 in) 4.5 mm (0.177 in) 6.0 mm (0.236 in) 12.0 mm (0.472 in)

The ratios describe punch strength and tooling risk, not finished-hole quality. A punched wall normally includes rollover, burnish, fracture, and an exit burr. If the hole receives a dowel, bearing, precision pin, or close-fit fastener, punching may create a pilot that is machined to final size.

Use sheet metal punching when repeat volume, standard tool sizes, and fast cycle time support the tooling approach. Request a tooling review when the diameter approaches the ratio limit, the material has high shear strength, the web is narrow, or cosmetic/burr requirements are strict.

Minimum Laser-Cut Hole and Slot Size

For a broadly portable design, use a laser-cut hole diameter and slot width at least equal to material thickness:

  • Round hole: D >= T
  • Slot width: S >= T

The rule provides a practical starting point without assuming a specific laser source, power, nozzle, assist gas, focus position, piercing strategy, or proprietary small-contour cycle. It also leaves room for a supplier to change machines without invalidating every small feature in the drawing.

The rule is deliberately conservative. The Fabricator describes D >= T as the generally accepted laser-hole guideline, while also reporting that controlled fiber-laser processes can cut holes down to roughly one-quarter of material thickness in some conditions. That aggressive result is equipment- and quality-specific, not a universal replacement for D >= T.

Laser cutting services are useful for mixed hole sizes, irregular slots, prototypes, and low-to-medium volumes where dedicated punch tooling is not justified. When a hole or web is below T, request a supplier-specific review and define what “acceptable” means: entrance diameter, exit diameter, taper, roundness, dross, burr, recast, discoloration, and repeatability.

Why supplier laser charts can be smaller than T

247TailorSteel publishes system-specific minimum-hole values below material thickness. Selected values from its minimum-hole tables—using the nitrogen column for steel—include:

Sheet thicknessSteel minimum holeStainless minimum holeAluminum minimum hole
1.0 mm 0.5 mm 0.5 mm 0.5 mm
2.0 mm 1.0 mm 1.0 mm 1.5 mm
4.0 mm 2.0 mm 2.0 mm 2.5 mm
6.0 mm 4.0 mm 3.0 mm 4.0 mm

These values demonstrate what one validated production system accepts; they do not define ShincoFab capability or a general industry limit. Gas selection can also change the value—for example, the same supplier publishes different steel limits for nitrogen and oxygen at some thicknesses.

As holes and slots become smaller, the pierce occupies a larger share of the contour and heat has less room to dissipate. Common effects include:

  • entrance spatter or a pierce witness;
  • top-to-bottom diameter taper;
  • lead-in flatness or reduced roundness;
  • dross and directional burr;
  • local discoloration or recast;
  • melted or distorted narrow webs;
  • greater sensitivity to nesting, sheet flatness, and parameter changes.

If a small feature controls fit or alignment, the laser can create an undersized pilot while drilling, boring, or reaming establishes the final bore.

Hole, Slot, Edge, and Bend Clearance Rules

The material surrounding a hole often controls manufacturability more than the diameter itself.

Hole to free edge

Mate recommends at least 2T between a punched hole and the sheet edge. Treat this as the remaining clear ligament. For a minimum-diameter mild-steel hole where D = T, that converts to a center-to-edge dimension of 2.5T, which is why diagrams may show a larger centerline dimension than the written clear-distance rule.

A laser may physically cut a narrower ligament, but the remaining strip can discolor, warp, melt back, vibrate, or be damaged during deburring and handling. If a narrow bridge is required, state its minimum finished width and whether bow, discoloration, or edge rounding is acceptable.

Between holes

For punched features, begin with 2T of clear material between hole edges. Convert it to center-to-center pitch using the actual diameters. Avoid applying an undefined statement such as “holes must be 6T apart” without saying whether the dimension is clear web, center pitch, or edge distance.

Large hole patterns may also need review for sheet stiffness, distortion, press sequence, heat accumulation, and the percentage of open area. A web that survives one pair of holes may distort across a dense perforation field.

Hole to bend

For this chart, interpret the common R + 2.5T round-hole guideline and R + 4T slot guideline as clear distances from the nearest feature edge to the bend tangent line. Supplier guides do not always use the same bend-line reference, so show the measurement origin explicitly and confirm it against the fabricator’s flat-pattern and tooling method before releasing the drawing.

These are starting rules for conventional sheet-metal forming. The final requirement changes with bend angle, V-die opening, grain direction, relief geometry, material strength, and whether the hole is cut before or machined after bending. Establish a reasonable inside bend radius for the selected material and tooling before calculating the clearance.

When a critical hole cannot move outside the bend zone, consider drilling or reaming after forming, using a relief, changing the bend sequence, increasing the radius, or changing the part architecture.

Minimum Slots, Notches, Tabs, and Narrow Features

Round holes are not the only features that become fragile as their width approaches material thickness.

FeatureEarly DFM referenceMain Failure Mode
Laser-cut slot width S >= T Pierce consumes the slot, walls taper, or slot closes with dross
Notch width One general guide recommends N >= 1.5T Narrow notch distorts, overheats, or becomes difficult to deburr
Notch length Use L_n <= 5N as a width-based slenderness check Long narrow notch twists or produces a weak tongue
Tab width B_t >= max(2T, 3.2 mm) Tab bends, bows, overheats, or breaks during handling
Tab length L_t <= 5B_t Slender tab loses positional stability
Inside notch radius r >= 0.5T Sharp internal corner concentrates stress and cannot remain perfectly sharp after laser cutting

These ratios are general DFM references rather than controlling standards. Published supplier guides use more than one notch-sizing convention; this chart adopts 1.5T for notch width and five times the notch width for length only as an early screening method. Confirm the final convention with the fabricator, and increase the dimensions for high-strength material, heavy deburring, structural tabs, welded attachments, cosmetic surfaces, or features exposed to repeated loading.

Do not confuse a slot width with its end radius or overall length. Dimension the clear width, end geometry, and location separately where the slot controls adjustment, airflow, a fastener path, or assembly access.

Hardware, Threads, Countersinks, and Precision Holes

Some features should not be designed from a generic thickness ratio.

Self-clinching hardware

A self-clinching fastener is selected by manufacturer, product family, thread, panel material, hardness, and thickness. A nut and a stud with the same thread can require different mounting holes. Use the exact diameter and tolerance from the chosen series rather than scaling the thread size. ShincoFab’s self-clinching fastener hole size chart provides examples and explains panel-thickness and edge-distance requirements.

Tapped holes

Specify the thread standard, class, pitch, pilot diameter, minimum engagement, panel condition, and whether the thread is cut, formed, extruded, or installed as hardware. Thin sheet may not provide adequate direct thread engagement even when the pilot hole can be cut.

Countersinks

Check screw standard, head angle and diameter, remaining material at the bottom of the countersink, distortion risk, and whether machining is required. A countersink that consumes most of the sheet thickness can create a sharp edge, breakout, or weak bearing surface. Do not infer a universal countersink depth from the minimum laser-hole rule.

Dowel, bearing, and locating holes

Laser cutting and punching can create useful pilots, but they do not automatically provide the cylindrical wall, close size, surface finish, and true position required for a precision fit. Drill, bore, interpolate, or ream when the functional tolerance demands it. A reamer improves an existing bore but normally follows the pilot; it should not be expected to correct a badly located hole.

For critical dimensions, compare the requirement with ShincoFab’s sheet metal tolerance chart and add explicit diameter, position, datum, inspection, and finish-condition callouts.

Design Checks Before Releasing a Drawing

ItemWhat to specify or confirmWhy it matters
Material Grade/alloy, temper or condition, and applicable standard Strength and ductility affect punching load, burr, forming, and crack risk
Thickness Actual millimeter or decimal-inch thickness Every ratio in the chart depends on T; gauge alone is material-specific
Process intent Laser, punch, drill, ream, or supplier-selected Prevents a precision requirement from being assigned to an unsuitable primary process
Feature function Clearance, ventilation, locating, bearing, thread pilot, or cosmetic Functional features need different tolerance and inspection controls
Diameter or width Nominal value plus unilateral/bilateral tolerance where needed Separates CAD geometry from acceptance criteria
Position Datums and true position for mating patterns Hole-size capability does not define location capability
Edge and web spacing Clear distance and measurement convention Prevents breakout, distortion, and ambiguous centerline interpretation
Bend relationship Hole/slot edge, tangent line, inside radius, angle, and bend sequence Prevents ovalization and feature movement during forming
Burr direction Functional or cosmetic face Punching, drilling, and cutting can leave directional burrs
Finish condition Before or after deburring, forming, plating, anodizing, or powder coating Secondary operations can change size, fit, and inspection results
Inspection method Pin gauge, optical measurement, bore gauge, or CMM as appropriate The method must reflect the functional requirement and tolerance
Quantity Prototype, batch, or repeat production Determines whether dedicated punching or secondary machining is economical

If the design started from gauge, convert it using the material-specific sheet metal gauge thickness chart before applying the ratios.

Common Minimum-Feature Problems

SymptomLikely causeDesign or process response
Laser hole is tapered or not round Hole is too small for the validated pierce/cut cycle Increase diameter, approve a machine-specific limit, or machine the final bore
Narrow slot closes or fills with dross Slot width and lead-in are too small Increase width, move the pierce, change parameters, or machine the slot
Punch breaks or deflects Punch-to-thickness ratio is too aggressive Increase the feature, use fully guided tooling, or change process
High burr or galling Tool wear, clearance, lubrication, or material adhesion Review die clearance, tool condition, coating, and burr direction
Hole breaks out at the edge Clear ligament is too small Move the hole, enlarge the surrounding flange, or change the attachment method
Web between holes deforms Adjacent features interact or the pattern removes too much material Increase clear web, stagger hits, or review perforation sequence
Hole becomes oval after bending Feature lies inside the bend deformation zone Move the feature, add relief, or machine it after forming
Fastener will not fit after finishing Coating, burr, taper, or inspection condition was not defined Add masking/allowance, deburr, or machine after finish where required
Self-clinching hardware spins or pushes out Wrong hole family, diameter, tolerance, panel hardness, or edge distance Use manufacturer data and review installation sequence/tool access
Precision pin binds despite nominal diameter Size alone was controlled; position, cylindricity, taper, or burr was not Add GD&T and use an appropriate secondary machining/inspection process

What to Do When a Feature Is Below the Recommended Minimum

OptionWhen it helpsTrade-off
Increase the hole, slot, web, tab, or notch Function permits more material or a larger opening May affect fit, airflow, shielding, sealing, or appearance
Use a supplier-approved fiber-laser limit Small-batch geometry can be validated on a specific laser Reduces sourcing flexibility and may need first-article approval
Use fully guided punch tooling Repeat volume justifies dedicated small-feature tooling Adds tool cost, maintenance, and press-compatibility constraints
Cut an undersized pilot, then drill A clean wall or smaller diameter is needed Adds workholding, cycle time, and burr control
Ream or bore the final hole Close fit, finish, or cylindrical geometry is critical Requires machining access and does not automatically correct a poor pilot location
Machine the hole after bending Forming would distort a critical feature Adds a formed-part fixture and may restrict tool access
Move the feature or add relief Edge or bend clearance is the limiting condition Changes local geometry and may affect assembly space
Replace direct thread with inserted hardware Sheet is too thin for adequate engagement Requires a manufacturer-specific mounting hole and installation clearance
Split the geometry into separate parts A tab, slot, or formed feature cannot be produced reliably Adds joining, tolerance stack, labor, and possible distortion

Download the Sheet Metal Hole
Size & Minimum Feature Chart

Get a printable PDF quick reference for steel, stainless steel, and aluminum gauge thicknesses in inches and millimeters.

Frequently Asked Questions

This FAQ gives conservative DFM starting points for sheet metal minimum features like holes, slots, edge clearances, and bend distances using actual thickness T. Use it for early design checks and confirm final manufacturability with your fabricator.

What is the minimum laser-cut hole size in sheet metal?

Use a hole diameter at least equal to material thickness (D >= T) as a conservative cross-supplier starting point. A validated fiber-laser system may cut below T, but the acceptable limit depends on material, thickness, gas, piercing strategy, taper, dross, roundness, and the supplier’s parameter set.

Yes. Published supplier charts and fiber-laser case studies show below-thickness holes. Treat those values as machine-specific capability, not as a universal DFM rule or a ShincoFab guarantee. Request a sample when the hole is critical.

For non-guided tooling, Mate publishes starting punch-to-thickness ratios of 0.75T for aluminum, 1.0T for mild steel, and 2.0T for stainless steel. Fully guided tooling can use smaller ratios, but only when the selected tooling family and press setup support them.

Stainless commonly imposes greater load and tool stress than aluminum or mild steel at the same thickness. A very narrow punch is more vulnerable to deflection, breakage, stripping loads, galling, and rapid wear, so ordinary non-guided tooling uses a more conservative ratio.

For punching, begin with a clear ligament of at least 2T from the hole edge to the free sheet edge. Convert that to a centerline dimension by adding half the hole diameter: C_e >= D/2 + 2T.

As an early DFM convention, measure at least R + 2.5T from the nearest round-hole edge to the bend tangent line and R + 4T from the nearest slot edge. Because supplier guides do not always use the same bend-line reference, show the measurement origin explicitly and confirm both values against the real material, radius, V-die, bend angle, direction, sequence, and tooling.

Use a slot width at least equal to material thickness (S >= T) as a general DFM starting point. A narrower laser-cut slot may be possible on a validated system, but pierce placement, dross, taper, heat, and narrow-web distortion need review.

Use drilling, boring, or reaming when the hole is below the approved primary-process limit or when fit, true position, roundness, cylindricity, surface finish, or post-bend accuracy controls the part. Specify the functional requirement rather than assuming the process name guarantees it.

Need a Hole and Minimum-Feature Review Before Production?

Send ShincoFab the CAD model or drawing, material grade, actual thickness, intended process, quantity, finish, hole and slot functions, edge and bend clearances, critical tolerances, burr direction, and inspection condition. ShincoFab can review the part against available cutting, punching, forming, hardware, and secondary-process options before quotation.

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