Draft-Angle Wall Shearing
Conical body angles machine part draft walls directly and reduce step-milling passes.
A tapered ball nose end mill, also called a tapered ball end mill, combines the surface-sculpting flexibility of a ball cutter with the rigidity of a conical core. Its flutes widen from a small spherical tip toward the shank for machining steep walls and deep mold pockets with reduced deflection.
Conical body angles machine part draft walls directly and reduce step-milling passes.
The spherical tip maintains tangential contact with aerodynamic and die-cavity surfaces.
The expanding core thickness resists chatter and deflection during deep axial plunges.
Spiral flutes carry metal chips out of deep, confined mold cavities.
Cuts draft angles directly onto cavity walls to reduce CAM steps and cycle time.
Conical geometry increases stiffness compared with straight-neck tools and helps suppress chatter on deep passes.
Produces smooth 3D cavity transitions that can reduce post-machining hand polishing.
Distributes cutting forces along the tapered profile to support edge retention in tough alloys.
Precision-ground spherical tip radii support part-to-part profile repeatability.
| Specification | Range / Details |
|---|---|
| Tip Radius Sizes | 1/64" to 1/2"+; metric 0.5 mm to 12 mm+ available |
| Taper Angles per Side | 0.5°, 1°, 1.5°, 2°, 3°, 5°, 7°, and 10° standard tapers |
| Flute Count | 2 flutes for non-ferrous materials and aluminum; 3 or 4 flutes for steels and titanium |
| Shank Styles | Straight cylindrical or reinforced tapered shank |
| Cutting Center | True center-cutting ball geometry |
| Operation Type | Deep 3D cavity profiling, draft-angle milling, and die sinking |
| Material / Coating | Best For | Key Advantage |
|---|---|---|
| Micro-Grain Carbide | Hardened tool steels, stainless steel, and titanium. | Core stiffness helps prevent chatter and tool flex during deep 3D passes. |
| nACo / AlTiN Coating | Hardened mold steels up to 65 HRC and dry milling. | Thermal hardness protects the ball nose tip against heat. |
| DLC / ZrN Coating | Aluminum alloys, copper, and non-ferrous polymers. | Low friction helps prevent material welding inside deep pockets. |
Micro-grain carbide provides core stiffness, nACo or AlTiN supports hardened steels and dry milling, and DLC or ZrN reduces material welding in non-ferrous work.
Maintain tool-vector engagement inside complex 3D mold cavities.
Run Z-level cavity roughing and 3D surface finishing passes in mold blocks.
Use live tooling spindles for deep radial contouring on small turned components.
Machines deep cavities, core pins, parting lines, and draft-angled pocket walls.
Navigates angled passages between blades to finish root radii.
Profiles curved intake and exhaust ports in engine cylinder heads.
Sculpts freeform geometries and draft-angled dental copings.
The conical core thickens toward the shank, increasing rigidity for deep pockets while also allowing draft-angled pocket walls to be cut in one pass.
Choose an angle that matches or is slightly smaller than the required part or mold draft, commonly 1° to 5° for injection molds.
The rotational radius at the exact center is zero, so surface speed also reaches zero there. On 5-axis machines, tilting the tool 15° to 30° moves contact toward the faster outer radius.
Micro-grain carbide tools with nACo or AlTiN coatings are designed for hardened steels such as H13, D2, and S7 up to 65 HRC.
Bauron can engineer non-standard taper angles, tip radii, extended-reach clearance necks, and wear coatings for 3D CAD/CAM models.
Bauron provides design and engineering support for tooling requirements. The engineering team works with customers on custom geometries, specialized coatings, and complex machining challenges.
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