Pure Copper Processing SolutionsFor turning small parts | UC1 and Y axis holder + High-pressure coolant
The Master of Pure Copper Processing
The search for an answer led me to NTK
NTK's Work Changing Concept
Diamond-coated carbide : Longer tool life with UC1
Improved chip control with Y-axis tool holder + high-pressure coolant
Performance
- High purity, high hardness diamond coating, and excellent adhesion performance enable long-term stable machining
- Improved chip control by applying Y-axis direction machining with high-pressure coolant
Applications
Pure copper (C1020/C1100) machined using Sliding head automatic lathes or CNC-lathes
Diamond-coated carbide:UC1
〔 Machining Property of C1100 Tough Pitch Copper 〕
Diamond-coated carbide: UC1 with excellent wear resistance & welding resistance is recommended because tooling tends to wear and the machined surface deteriorates due to welding, resulting in short tool life.
A good machined surface can be obtained by applying the appropriate cutting condition (low cutting depth/low feed) which reduces the chip thickness.
Case Study
Battery connector | |
---|---|
|
C1100 φ10-20 |
|
55 - 110 |
|
0.03 |
|
0.2 |
|
WET |
UC1 DCMT11T302 FNAM3 | 1000 pcs / corner |
PVD super coat DCGT11T302 molded chipbreaker |
50 pcs / corner |
Electrode part | |
---|---|
|
C1100 φ12 |
|
80 |
|
0.05 |
|
1.0 |
|
WET |
UC1 DCMT11T301 FNAM3 | 2000 pcs / corner |
PVD super coat DCGT11T301 molded chipbreaker |
100 pcs / corner |
Machined Surface Comparison
- [ Cutting conditions ]
- Part material : C1100 vc=80m/min ap=1.0mm WET
- [ Tools used ]
- DCMT11T302FNAM3 UC1
If the cutting conditions cause the chips to become thick (high cutting depth or high feed) then the machined surface will deteriorate due to chip clogging.
Cutting conditions
Scroll the table →
Grade | Tool | Operation | Machining | Speed (m/min) | Feed (mm/rev) | DOC (mm) | WET |
---|---|---|---|---|---|---|---|
UC1 | Tough pitch copper C1100 | Turning | Rough - Finish | 50 - 150 | 0.02 - 0.05 | 0.2 - 2.0 | ● |
Using the cutting conditions shown, chips can be segmented and controlled with AM3 chipbreaker.
When machining at large depths of cut and high feed rate, select CL or ZP chipbreakers to suppress chip clogging.
Cutting Conditions
Scroll the table →
Grade | Tool | Operation | Machining | Speed (m/min) | Feed (mm/rev) | DOC (mm) | WET |
---|---|---|---|---|---|---|---|
UC1 TM4 | Oxygen-free copper C1020 | Turning | Rough - Finish | 50 - 150 | 0.02 - 0.20 | 0.5 - 3.0 | ● |
Refer to content above to select cutting conditions and chip breaker to obtain good chip control.
If you want longer tool life than PVD Carbide: TM4, use Diamond-Coated Carbide: UC1.
Cutting conditions
Scroll the table →
Grade | Tool | Operation | Machining | Speed (m/min) | Feed (mm/rev) | DOC (mm) | WET |
---|---|---|---|---|---|---|---|
UC1 TM4 | C1100 C1020 | Turning | Finish | 50 - 150 | 0.02 - 0.05 | 0.1 - 0.5 | ● |
If you want longer tool life than PVD Carbide: TM4, use Diamond-Coated Carbide: UC1.
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-
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-
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Useful information
- 4 STEP-NTK Cutting Tools Lab for choosing suitable cutting tool for cut-off machining
- The aspects of "chip control" that you should check when workpiece damage or poor dimensioning are detected during Swiss type CNC automatic lathe machining
- Two Areas to Check When Coaxiality is Not Achieved During Swiss CNC Lathe Machining
- "Two" checkpoints and measures to be checked when "Roundness" does not come out in Swiss-type CNC-automatic lathe machining-NTK Cutting Tools Lab