In the aerospace industry, materials that are both high-strength and lightweight is the key. By making use of new combinations of materials, weight can be reduced further, strength and corrosion resistance can be increased and assembly can be simplified by using an integrated design. Whereas structural parts made of aluminium, titanium or high strength steel are machined on machining centres or gantry machines, final assembly machining is carried out by handheld machines, drill feed units or robots.
Tool program for titanium machining
Milling with fixed cutting edges
OptiMill-Titan-HPC
Shoulder milling cutter
Four-edge shoulder milling cutter for roughing and finishing titanium
Special cutting edge finish for optimal surfaces and edges
Highest degree of tool stability through maximum core dimension and core rise at the shank
Different corner radii available
Ø area: 6.00 – 25.00 mm
OptiMill-Tro-Titan
Trochoidal milling cutters
Five-edge trochoidal milling cutter
Maximum material removal rate while providing an excellent surface finish at the same time
Optimised unequal spacing
Finely balanced cutting tool for protecting the machine spindle and a longer tool life
Cutting depth up to 3xD
Ø area: 6.00 – 25.00 mm
Milling cutters with replaceable cutting edges
NeoMill-Titan-2-Corner
Eckfräser
Eckfräser mit zweischneidigen Radial-Wendeschneidplatten
Positive Grundform für schwingungsanfällige Bauteile
Schnitttiefen von bis zu 10 mm
ø-Bereich: 40,00 - 100,00 mm
NeoMill-Titan-2-Shell
Walzenstirnfräser
Walzenstirnfräser mit zweischneidigen Radial-Wendeschneidplatten
Ideal für tiefes Eckfräsen und zum Besäumen mit hohen Schnitttiefen von bis zu 57 mm
ø-Bereich: 32,00 - 80,00 mm
NeoMill-2/4-HiFeed90
Hochvorschub-/90°-Eckfräser
Universelles Werkzeugsystem für höchste Produktivität
ø-Bereich: 16,00 - 200,00 mm
Vollbohren
MEGA-Speed-Drill-Titan
Vollhartmetallbohrer
Zweischneidiger Hochgeschwindigkeitsbohrer
Vier Führungsfasen für exakte Oberflächengenauigkeit und Zylindrizität (Toleranzklasse IT9, IT8 erreichbar)
Konvexe Schneidkante mit Eckenfase für höchste Stabilität
Neuartiges Kordelprofil zum Schutz der Führungsfasen
Maximale Hitze- und Verschleißbeständigkeit
ø-Bereich: 3,00 - 20,00 mm
Reiben und Feinbohren
FixReam-FXR
High-performance reamers with a cylindrical shank
High-performance reamer made from solid carbide
Straight-fluted for through and blind bores
Left-hand fluted for through bores
Ideal for implementing short cycle times
Variety of cutting materials and coatings available
Ø area: 2.80 – 20.20 mm
HPR replaceable head reamer
Replaceable head reamers with HFS connection
High-precision replaceable head system in a fixed design with brazed cutting edges
Precise radial run-out and changeover accuracy of <3 μm
Highest degree of economic efficiency due to modular system
Suitable for minimum quantity lubrication (MQL)
Ø area: 7.00 – 65.00 mm
Boring
Aufbohren in Titan
Aufbohrwerkzeuge mit Tangentialtechnologie
Bauteilspezifische Sonderwerkzeuge für höchste Produktivität, wirtschaftliche Prozesse und stabile Bearbeitungskonzepte
Tangential-Wendeschneidplatten CTHQ und FTHQ
Beste Bearbeitungsergebnisse bei Längen-/Durchmesser-Verhältnis >3,5xD durch Bogenschliff
Titanium and titanium alloys are predestined for use in aerospace. High demands are placed on workpiece material strength and corrosion resistance in relation to their specific weight. This results in a wide range of applications extending from small mechanically processed structural parts to load-bearing parts in the fuselage or blades in the engine.
Machining example torsion link
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Feinbohrwerkzeug
Sehr genaue Einstellung der Schneide
Perfekte Koaxialität der Bohrungen
Sehr gute Oberflächenrauhigkeit
Perfekte Bohrungsgeometrie
Sehr stabile Bearbeitung durch Führungsleisten
Hohe Wiederholgenauigkeit und einfache Werkzeugeinstellung
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NeoMill-Titan-2-Shell
Maximale Zerspanungsraten
Optimale Spanabfuhr
Hohe Laufruhe
Variables Kühlkonzept
Schneiden mit verschiedenen Eckenradien einsetzbar
Verschiedene Schneidstoffe erhältlich
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MEGA-Speed-Drill-Titan
140° Spitzenwinkel
Vermeidung von Anhaftungen durch extrem glatte Beschichtung
4 Führungsfasen (beste Rundheitswerte)
Konvexe Schneide
Innere Kühlmittelzufuhr
Neu gestaltete Spannut (optimale Spanabfuhr)
Effizienter Kühlmittelfluss (Vermeidung von Reibung und Hitze an der Schneide)
4 / 5
OptiMill-Titan-HPC
Spezielle Kantenpräparation (stabile Schneide)
Unterschiedliche Steigung der Spirale (stabiler Schnitt, ruhiger Lauf)
Steigender Kern (mehr Stabilität)
5 / 5
FixReam
Ausführung aus Vollhartmetall oder gelötet
Bohrungsqualität: H7
DLC-Beschichtung für beste Leistung
Durchmesser konfigurierbar (Speedline)
Ausführung für Durchgangs- oder Grundbohrungen
Geeignet für Minimalmengenschmierung (MMS)
Bearbeitungsbeispiel Hingeline
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Deburring tools made from solid carbide
With these custom tools in a special spherical shape, the bore entrance and exit of the main bore as well as the fixing bore are deburred through circilar milling.
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NeoMill-Titan-2-Corner
High machining rates
Very quiet running
Cutting edges with various corner radii can be deployed
Variety of cutting materials available
3 / 6
MEGA-Speed-Drill-Titan
Extends tool life by 30% compared to previous solutions
Drilling specialist for high cutting speeds and feed rates
Short cycle times
4 / 6
TTD replaceable head drill, custom drill, boring bar
TTD replaceable head drill for piloting the first lug
Custom drill with additional guide element at the neck for medium machining of lugs from both sides
Bearing-guided boring bar for precise finishing of the main bore from one side
5 / 6
OptiMill-Titan-HPC
Increases tool life by 35%
Perfect solution for roughing, medium machining and finishing
Excellent price-performance ratio
Fits Mill Chuck, System HB
Optimal pitch (stable cut, smooth running)
Core rise for more stability
6 / 6
OptiMill-Tro-Titan
Extends tool life by 10% compared to previous solutions
High removal rates possible
Unequal spacing of the cutting edges
Special coating to avoid deposits
Specially designed chip flute for optimum chip removal
Machining example valve housing
1 / 7
Solid carbide drill
For difficult drilling applications
Innovative lead geometry for good chip removal and low cutting pressure
Significantly more performance, up to twice the feed rate compared to previous solutions
2 / 7
Boring tool with interchangeable blades
Three-stage boring tool for medium machining
No setting of cutting edges necessary
Economical tool concept for roughing bores
High machining rates possible
Indexable inserts with excellent thermal stability
3 / 7
Boring tool made of solid carbide with four edges
Long tool life thanks to special coating
Coating protects the cutting edges against high temperatures and excessive wear and tear
The internal coolant supply and chip channel geometries ensure efficient chip removal
4 / 7
HPR replaceable head reamer with six edges
Perfect concentricity of the bores
High feed rate possible and therefore less machining time
Adjustable adapter enables precise tool settings and eliminates spindle errors
Complete finishing in a single step
5 / 7
Solid carbide drill with three edges
Special triple-edge geometry
Perfect positioning of the drill
Highly suitable for inclined bore entrances or cross bores
6 / 7
Boring tool made of solid carbide with four edges
Special geometry
Stable machining
Optimal guide into the bore
Four cutting edges ensure the right geometry of the bore prior to finishing
7 / 7
HPR reamer with six edges
Can be repaired by desoldering/soldering the blades
Perfect roundness of the bore due to the matching multi-cutting edge geometry
Lower weight means lower fuel consumption resulting in fewer emissions. Therefore, many different applications for titanium materials can be found in automotive engineering. Starting with engine components, through to transmission parts and suspension elements as well as exhausts. The automotive manufacturers’ objective is to make vehicles lighter and therefore more environmentally friendly.
Machining example control arm
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MEGA-Speed-Drill-Titan
Extends tool life by 30% compared to previous solutions
Drilling specialist for high cutting speeds and feed rates
Short cycle times
2 / 4
OptiMill-Titan-HPC
Four-edge roughing milling cutter
Polished chip flute
Heat-resistant high-performance coating
Unequal cutting edge (smooth cut)
3 / 4
HPR replaceable head reamer
Radial run-out and changeover accuracy less than 3 μm
Easy to handle
Maximum precision and productivity
Internal coolant supply to directly cool the cutting edges
Particularly economical (replaceable head)
4 / 4
NeoMill-Titan-2-Shell
Maximum machining rates
Optimum chip removal
Very quiet running
Variable cooling concept
Cutting edges with various corner radii can be deployed
Titanium is practically the perfect workpiece material for medical technology as it can be implemented extensively due to its bio-compatibility (i.e. its stability in biological surrounding – anti-allergenic), low thermal conductivity and anti-magnetic behaviour.
Machining example hip joint
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OptiMill-Tro-Titan
Hitzebeständige Hochleistungsbeschichtung
Speziell gestaltete Spannut für optimale Spanabfuhr
Wärmereduzierung in der Schnittzone
Bearbeitungsbeispiel Knochenplatte
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OptiMill-Tro-Titan
Hitzebeständige Hochleistungsbeschichtung
Speziell gestaltete Spannut für optimale Spanabfuhr
Wärmereduzierung in der Schnittzone
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MEGA-Speed-Drill-Titan
Standzeiterhöhung um 30 % im Vergleich zur bisherigen Lösung
Bohrspezialist für hohe Schnittgeschwindigkeiten und Vorschübe