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How to Remove CNC Undercuts From Packaging Part Designs

Learn how to remove CNC undercuts from packaging part designs with DFM tips for draft side actions and cost saving

Are custom tooling costs and failed DFM checks delaying your packaging parts?

Unnecessary undercuts can increase CNC machining complexity by restricting cutter access, requiring special tools, additional setups, or alternative machining strategies. For packaging machine components, reviewing these features during DFM can help simplify production without changing the functional design intent.

In this guide, you're going to learn the exact Design for Manufacturability (DFM) strategies to eliminate undercuts, optimize tool access, and slash your manufacturing costs.

Let's dive right in!

Understanding CNC Undercuts in Packaging Part Designs

What Is a CNC Undercut in Packaging Inserts and Molds?

A CNC undercut is any recess, overhang, or internal pocket feature on a packaging part that standard straight-cutting tools cannot reach from a direct top-down orientation. When we engineer custom foam packaging, thermoform aluminum molds, or protective enclosures, undercuts happen whenever geometry blocks the straight vertical Z-axis path of a cutting tool.

If a cutter cannot maintain direct line-of-sight access along the primary tool access vector, standard milling bits leave un-machined material behind, ruining part tolerances.

Why Undercuts Cause Machining Errors in 3-Axis CNC Routing

Standard 3-axis CNC routing operates along three linear axes: X (side-to-side), Y (front-to-back), and Z (up-and-down). Because the spindle stays strictly vertical, side-recessed geometry presents major production bottlenecks.

    • Tool Collisions: Pushing a standard end mill sideways into a recessed pocket forces the tool shank or collet to slam into upper part walls.
    • Trapped Material: Vertical bits simply skip hidden overhangs, leaving uncut stock that prevents electronic devices or products from fitting into the final packaging.
    • Severe Chatter and Tool Breakage: Forcing non-undercutting end mills into side pockets creates excessive lateral friction, leading to rough surface finishes and broken bits.
    • Increased Setup Costs: Resolving unintended undercuts requires manual repositioning or extra fixturing, driving up machine hours and scrap rates.

Packaging Applications Most Vulnerable to Undercuts

Certain packaging designs trigger undercut issues far more frequently than others due to their functional retention needs and complex geometry.

Packaging ApplicationCommon Undercut FeatureMachining Impact
Custom Foam InsertsDeep finger-pull cavities, side-retention slots, and bottom lip groovesTool shank friction tearing soft foam and incomplete cavity profiles
Thermoform TraysVertical 90° sidewalls, undercut locking ribs, and stacking shouldersMold geometry trapping vacuum sheets and preventing part ejection
Rigid EnclosuresInternal latch pockets, recessed hinges, and perimeter snap-fitsBlocked line-of-sight access for standard 3-axis milling bits

Core Design Strategies to Eliminate CNC Undercuts

We eliminate CNC undercuts directly in CAD to prevent machining delays and lower overall production costs. By modifying part geometry before sending files to the mill, we keep production running smoothly on standard equipment.

Align Part Orientation with the Tool Access Vector

Rotating the part in CAD so features face the spindle directly removes hidden geometry. Aligning pockets and slots along a single primary tool access vector lets standard 3-axis CNC machines reach all features in a single setup, cutting down on extra fixturing.

 

Split Complex Geometries into Modular Assemblies

When a packaging component features overhangs on multiple sides, splitting it into modular sub-components solves tool access issues. When manufacturing high-performance custom precision change parts for packaging machines, modular designs allow us to mill each section using standard tooling before joining them with dowels, fasteners, or adhesives.

Reposition Parting Lines

Moving the parting line to the outermost contours or natural geometric breaks eliminates trapped recessed features. This adjustments prevents cutter obstruction in mold cavities without compromising part strength or seal integrity.

Design StrategyCore ActionPrimary Benefit
Vector AlignmentRotate CAD orientation to face spindleEliminates extra machine setups
Draft AnglesTaper vertical walls 1° to 3°Provides cutter clearance & stops binding
Modular SplittingDivide 1 complex part into 2 simple partsEnables 3-axis milling across all faces
Parting Line ShiftRelocate mold split to outer edgesRemoves overhangs in thermoform tooling

Smart Tooling Alternatives When Undercuts Are Unavoidable

Smart Tooling for CNC Packaging Undercuts

Sometimes a packaging part design demands an internal lip, dynamic snap-latch, or deep side groove that you simply cannot redesign out. When we run into trapped geometry that a straight vertical pass cannot reach, we pivot to specialized cutting tools and advanced multi-axis machine setups.

Specialized Cutters for Internal Features

When standard flat end mills fail to reach recessed areas, custom profile cutters allow us to machine behind obstruction walls without colliding with the workpiece:

    • T-Slot Cutters: Ideal for cutting horizontal side channels, O-ring grooves, and rectangular retention slots in rigid enclosures or metal molds.
    • Spherical (Lollipop) Mills: Perfect for 3D contoured undercuts, organic curves in custom foam packaging CNC routing, and multi-directional pocket clearing.
    • Dovetail Bits: Essential for angled locking geometry, slide mechanism guides, and tapered snap-fit packaging latches.
Tool TypeBest Packaging ApplicationPrimary Advantage
T-Slot CuttersSide grooves in rigid enclosuresCuts flat internal channels without re-orienting the part
Lollipop MillsContoured foam packaging & mold cavitiesFull 3D spherical access for tight internal radii
Dovetail BitsInterlocking packaging trays & sliding latchesPrecision angular side cuts in a single pass

Multi-Axis Machining for Unrestricted Tool Access

When custom tooling hits physical reach limits, switching from traditional 3-axis routing to multi-axis setups expands our tool access vector. Tilting the spindle or rotating the part dynamically allows standard end mills to clear deep overhangs without requiring slow secondary manual setups.

For complex mold geometry, implementing 5-axis toolpath control for thermoforming accuracy allows us to maintain optimal cutter contact while tilting past restrictive walls. When evaluating machine strategies for complex packaging machine parts, comparing 3+2 vs simultaneous 5-axis machining helps us reduce cycle times while cleanly milling steep internal side walls.

Modifying Geometry for Standard End Mills

You do not always need expensive 5-axis machines or specialty bits to resolve hard-to-reach features. Minor CAD geometry tweaks often allow standard tooling to perform reliable undercut machining:

    • Corner Reliefs (Dogbone Cuts): Add small circular relief breakouts at internal corner joints so rectangular mating parts seat fully without needing sharp internal corners.
    • Expanded Corner Radii: Increase internal radii to fit larger, stiffer end mills. This eliminates chatter and reduces tool deflection during deep vertical passes.
    • Tool Clearance Recesses: Machine shallow relief pockets adjacent to overhangs to ensure adequate CNC tool clearance for standard cutter shanks.

Design for Manufacturability (DFM) Workflow for Packaging Parts

Removing CNC Undercuts from Packaging Designs

We integrate DFM for CNC machining at the very start of every project to catch geometry issues early and keep production lean.

Automated CAD Undercut Checks

Before sending any custom CNC parts to the shop floor, we run automated draft and undercut analysis in CAD to remove undercuts CAD models often hide. This instantly flags trapped faces, deep vertical walls, and obscured geometry along our target tool access vector. Catching these digital errors early prevents broken end mills and ruined stock. Utilizing DFM-optimized CNC machined plates ensures that pocket depths and wall clearance are ready for standard tooling from day one.

Balancing Part Protection and Machining Speed

Packaging inserts must hold items securely, but over-engineered retention features cause cycle times to skyrocket. We balance product protection with fast toolpath execution through targeted design tweaks:

Design FeatureProtection GoalDFM AdjustmentCycle Time Impact
Deep retention pocketsPrevents product shiftAdd 3° to 5° draft angles25% faster roughing passes
Snap-fit overhangsLocks parts in placeReplace with split modular inserts30% reduction in milling time
Sharp inner cornersFits outer box edgesIncrease radii to match cutter diameterEliminates secondary tool swaps

Cost Savings: Tooling Wear and Machine Hours

Stripping unnecessary undercuts from packaging designs delivers immediate cost reductions across production runs:

    • Lower Tooling Expense: Eliminates the need for fragile lollipop cutters or specialized dovetail bits that wear out quickly.
    • Machining Setup Reduction: Keeps jobs on standard 3-axis CNC routers by avoiding complex multi-axis re-fixturing.
    • Maximized Feed Rates: Allows standard flat and ball-end mills to run at peak RPMs with optimal CNC tool clearance.

Frequently Asked Questions

Can standard 3-axis CNC machines cut undercuts on packaging parts?

Yes, but with strict geometric limits. Standard 3-axis CNC routing equipment moves strictly along the X, Y, and Z axes, meaning straight end mills cannot reach features shaded from the top tool access vector. We can machine basic horizontal undercuts on a 3-axis setup using specialty cutters like T-slot or dovetail bits. However, for complex 3D undercuts or angled relief features in custom foam packaging inserts, standard 3-axis setups require manual part flipping or multi-axis tooling updates.

How do draft angles affect the fit of foam and plastic packaging inserts?

Draft angles introduce a slight taper (typically 1° to 3°) along vertical walls to give tools clearance and ease part ejection:

    • Thermoformed Plastics: Proper draft angles prevent hot sheets from sticking, dragging, or tearing against mold sidewalls during ejection.
    • Custom Foam Inserts: Adding a subtle draft angle prevents router bits from pinching dense foam, creating clean edges and a reliable friction fit for protected products.

What is the easiest way to detect undercuts in CAD software?

The most efficient method is running an integrated CAD undercut analysis tool or color-coded draft analysis module before prototyping:

    • Define Direction: Set the primary pull direction or tool access vector (typically the Z-axis).
    • Color Mapping: The software instantly highlights trapped geometry, zero-draft walls, and negative overhangs in red or yellow.
    • Evaluate: Identify problematic zones to determine whether a simple draft angle fix or a dedicated undercutting end mill is required.

Is it cheaper to redesign the packaging part or switch to 5-axis CNC milling?

Redesigning the part to eliminate undercuts is usually the most cost-effective path for high-volume manufacturing. Tweaking parting line placement or splitting complex parts into modular pieces keeps production on lower-cost 3-axis machines. However, for complex molds with tight tolerances where design changes aren't an option, using specialized 5-axis thermoforming tool inserts eliminates multi-setup re-clamping and drastically cuts overall cycle times.

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