Face milling cutters
I have found results from40000+products and10000+suppliers aboutFace milling cutters
Handerk Tungsten Carbide Ball Nose End Mill Face Milling Cutter for CNC
CNC Lathe Machining Indexable Side and Face Milling Cutter
Inch Indexable Square-Shoulder Face Milling Cutter Head Milling Tool 90° /65° Cutting Cutter
Side and Face Milling Cutters Used to Producing Laminating Flooring
45° Indexable Milling Cutter Zmfpn/Mfpn Se12 Shell Face Mill for Seht1204 Inserts CNC Machining
Customized Hot Sale End Mill High Quality Tungsten Carbide Router Bits 65 Degree Face Milling Cutter
Baoke OEM Factory Wholesale Uncoated 3 Flute Flat Solid CNC Shoulder Face Milling Cutter Aluminum
25mm Customized Carbide Face Milling End Mill 8 Flutes Cutter
Cutoutil Emrw-6r-63-22-4t for Rpmt12 Rpmt16 Inserts Bap Face Mill Cutter
Km 45 Degree Face Milling Cutter Head CNC Cutter for Aluminium
Tct Straight Tooth Side and Face Milling Cutter for Metal Plastic Grooving
High Quality Face Mill Head Cutting Tools Yh-Xdp-06090-63r-A22-5t Face Milling Cutter Znmu0806 Insert
HSS Side & Face Milling Cutter with Staggered Tooth
Fma02-050-A22-Se12-03 Tungsten Carbide Face Milling Cutter
Apmt1705 CNC Shoulder Face Mill for Heavy Cutting Indexable Milling Cutter
Professional Indexable Face Mill Cutter Head for CNC Metal Cutting
HSS Staggered Tooth Side and Face Alloy Gear Profile Milling Cutter
Mfwn90-250r-14t High Precision Indexable Face Milling Cutter
Kanzo HSS Side and Face Milling Cutter with Straight Teeth
4mm HRC 58 Degree Coating Machining Face Ball Nose Milling Cutter
Obt Txn03r Face Milling Cutter Head Support for Insert Lnmu0303zer Holders
High-Performance 90° Right Angle Face Mill Cutter for Precision Machining
Cutting Tool CNC Lathe Machine Tools Face Mill Cutter Body Indexable Km12 Face Milling Cutter
Sourcing guidance for Face Milling Cutters
What are the key technical specifications to consider when selecting a face milling cutter for industrial use?
When sourcing face milling cutters, you must prioritize cutter diameter, number of teeth (flutes), and lead angle. For high-efficiency machining, a 45-degree lead angle is often preferred as it balances radial and axial forces, reducing the risk of vibration. Ensure the tool body is made of high-quality alloy steel (e.g., 42CrMo) with a hardness of HRC 40-45 to prevent deformation under high heat. Additionally, verify the clamping system type (e.g., wedge-clamp or screw-on) to ensure it matches your machine's spindle and rigidity requirements.
How do I choose the right insert grade and coating for different workpiece materials?
The choice of carbide insert grade is critical for tool life. For stainless steel (M-class), look for PVD-coated inserts with high thermal shock resistance. For cast iron (K-class), CVD-coated inserts (thick Al2O3 layer) are superior due to their wear resistance. If you are machining aluminum (N-class), specify uncoated, polished inserts to prevent built-up edge (BUE). Always request the ISO classification of the inserts from the supplier to ensure compatibility with your specific material hardness.
What compliance and quality standards should a professional milling cutter meet?
Suppliers should strictly adhere to ISO 6462 standards, which define the dimensions and designations for face milling cutters. For the manufacturing process, look for ISO 9001:2015 certification. If the cutters are intended for high-speed machining (HSM), ensure they are dynamically balanced to G2.5 or G6.3 standards at maximum RPM to prevent spindle damage and ensure surface finish quality.
How can I evaluate the economic feasibility of high-feed vs. standard face milling cutters?
Perform a Total Cost of Ownership (TCO) analysis. While high-feed milling (HFM) cutters may have a higher initial cost, they significantly reduce cycle time by allowing higher table feeds. Calculate the Metal Removal Rate (MRR) and compare it against the cost per edge. A cutter that uses double-sided inserts (e.g., 8 or 16 cutting edges) offers much better economic feasibility over time compared to single-sided triangular inserts.
Cross-Border Procurement Strategies for Face Milling Cutters
What are the common risks when purchasing CNC cutting tools from overseas suppliers?
The primary risks include material substitution (using low-grade steel for the cutter body) and inconsistent insert tolerances. To mitigate this, use Made-in-China.com's 'Audited Supplier' reports to verify the factory's production equipment and testing capabilities. Always request a trial batch to test the run-out accuracy (which should be within 0.02mm) before committing to a large-scale order.
How should I negotiate with suppliers to ensure long-term supply stability and pricing?
Focus on volume-based pricing tiers and annual procurement agreements. Negotiate for free replacement of cutter bodies if they fail under normal operating conditions within the first 6 months. For customized cutters (non-standard diameters), ensure the supplier provides CAD/STEP files for approval before production to avoid costly shipping returns due to design errors.
What are the best practices for shipping precision industrial tools to international destinations?
Face milling cutters are heavy and susceptible to rust. Ensure the supplier uses VCI (Volatile Corrosion Inhibitor) paper or anti-rust oil coating before vacuum sealing. For shipping to the US or Europe, specify FOB or DAP terms to maintain control over logistics costs. Ensure the outer cartons are double-walled corrugated boxes with internal foam padding to prevent the heavy steel bodies from breaking through the packaging during transit.
How can I ensure transaction security and quality alignment during the procurement process?
Utilize Trade Assurance services provided by Made-in-China.com to protect your payment until the goods are confirmed to meet your specifications. For large orders, hire a third-party inspection agency (like SGS or Intertek) to perform a Pre-Shipment Inspection (PSI), focusing specifically on thread accuracy, coating thickness, and shank fitment.





























