| 1 | Workpiece MaterialStart with the material being cut. | Determine whether the workpiece is aluminum, mild steel, stainless steel, cast iron, titanium, hardened steel, or a non-metallic material. | Choose a tool substrate and geometry suited to the material’s hardness, toughness, abrasiveness, and thermal conductivity. Do not use one general-purpose tool for every material. | Aluminum: sharp edges Steel: tougher edge Titanium: heat-resistant grade Cast iron: abrasion resistance | Prevents premature wear and edge failure. |
| 2 | Material HardnessCheck hardness and condition. | Review hardness in HB, HRC, or another applicable scale, and note whether the material is annealed, normalized, pre-hardened, or hardened. | Use tougher cutting edges for interrupted cuts and harder materials. For hardened steels above approximately 45 HRC, consider appropriate carbide or advanced cutting materials and stable machining conditions. | Soft metals: sharper geometry Hard steels: wear-resistant grade Interrupted cuts: tougher edge | Matches tool strength to cutting loads. |
| 3 | Machine CapabilityConfirm spindle and machine limits. | Check maximum spindle speed, available power, torque, axis travel, machine rigidity, and the control system’s ability to maintain programmed feed rates. | Select tool diameter and cutting parameters that remain within the machine’s power, speed, and torque envelope. A smaller tool may be necessary when high spindle speed is unavailable. | Spindle speed: rpm Power: kW Torque: N·m Rigidity: high/medium/low | Avoids overload, chatter, and stalled machining. |
| 4 | Tool MaterialChoose the appropriate substrate. | Compare high-speed steel, solid carbide, carbide inserts, ceramic, cermet, cubic boron nitride, or diamond-based options according to the application. | Use solid carbide for high stiffness and productivity in many CNC operations. Use high-speed steel where toughness, lower cost, or lower-speed equipment is more important. | HSS: tough and economical Carbide: high speed and rigidity CBN: hardened ferrous materials PCD: non-ferrous abrasive materials | Balances tool life, speed, and cost. |
| 5 | Tool GeometryMatch the edge to the operation. | Consider rake angle, clearance angle, helix angle, number of flutes, edge preparation, chipbreaker design, and cutting direction. | Use fewer flutes and larger chip spaces for roughing or high-volume chip evacuation. Use more flutes when rigidity and fine finishing are priorities, provided chip space remains adequate. | Roughing: large chip space Finishing: more cutting edges Difficult materials: stronger edge | Improves chip control and surface quality. |
| 6 | Cutting OperationIdentify the machining task. | Determine whether the tool will be used for facing, turning, slotting, drilling, pocketing, profiling, threading, roughing, or finishing. | Choose a purpose-designed tool where possible. Slotting requires reliable chip evacuation, while finishing generally requires controlled runout, a sharp edge, and stable engagement. | Roughing: high material removal Finishing: low runout Slotting: chip evacuation Drilling: point geometry | Reduces inefficient or unsuitable tool use. |
| 7 | Cutting ParametersSet speed, feed, and depth correctly. | Use the tool supplier’s starting data, then verify cutting speed, spindle speed, feed per tooth, feed rate, axial depth, and radial engagement. | Calculate spindle speed using cutting speed and tool diameter. For milling, calculate feed rate from feed per tooth, number of teeth, and spindle speed. Adjust gradually based on load and chip formation. | n = 1000Vc ÷ πD Vf = fz × z × n Vc: m/min fz: mm/tooth | Controls productivity, heat, and tool wear. |
| 8 | Workholding and ReachMinimize deflection. | Evaluate fixture rigidity, tool overhang, part accessibility, tool diameter, and the distance from the holder nose to the cutting zone. | Use the shortest practical tool overhang and the largest suitable tool diameter. Improve workholding before increasing cutting parameters when vibration occurs. | Short overhang: greater stiffness Long reach: lower cutting load Rigid fixture: better stability | Reduces chatter, deflection, and dimensional error. |
| 9 | Coolant and Chip ControlPlan heat and chip evacuation. | Check whether the process uses flood coolant, through-tool coolant, minimum quantity lubrication, air blast, or dry machining. | Use a coolant method compatible with the workpiece and tool. Ensure chips leave the cutting zone, especially in deep holes, pockets, and grooves. Avoid recutting chips. | Deep holes: through-tool coolant Aluminum: chip evacuation Cast iron: often dry or air-assisted | Manages heat and prevents chip damage. |
| 10 | Quality and Tool LifeDefine the result before buying. | Set requirements for dimensional tolerance, surface roughness, cycle time, tool life, repeatability, and total cost per part. | Use finishing tools and stable holders for tight tolerances. Track tool wear, cutting time, rejected parts, and replacement frequency instead of judging performance by purchase price alone. | Tolerance: mm Surface roughness: Ra Tool life: minutes or parts Cost: per finished part | Optimizes total machining cost and consistency. |