Copper Rod Forging:From Material Selection to Precision Processing
Copper Rod Forging:From Material Selection to Precision Processing
Material selection: Select appropriate copper rod materials (e.g., pure copper (T2), phosphorus-deoxidized copper (TP2)) based on the product's final application requirements, such as conductivity, corrosion resistance, or decorative properties.
- Cutting: Use cutting equipment to slice long copper rods into blanks of required dimensions for forging.
Step 2: Heating
- Loading into furnace: Place the copper rod billet into the heating furnace (e.g., box furnace or induction furnace).
- Temperature control: Heat the copper rod to a specific "forging temperature". For pure copper, this temperature range is typically between 750°C and 900°C. At this temperature, the copper exhibits a bright orange-red color.
- Temperature is too low: poor plasticity, easy to crack.
- Excessive temperature: It is easy to produce "overburning" phenomenon, which leads to coarse grains, grain boundary oxidation and material scrap.
Step 3: Forging and forming (the core process)
This is the process of heating the copper rod blank and shaping it into the target shape by external force.
- Primary forging (drawing or upsetting):
- Drawing: An increase in the length of a copper rod with a decrease in its cross-sectional area achieved by hammering. It is commonly used for manufacturing shafts and rod-shaped components.
- Brazing: A process where copper bars are hammered to reduce their length and increase their cross-sectional area. It is commonly used for manufacturing disc-shaped components such as flanges and gears.
- Forming and Forging: Craftsmen use various tools such as mallets, hammers, flat hammers, and shaping hammers to perform precise shaping on an anvil. This process may include:
- Bending: Forging a copper rod into the desired curvature or angle.
- Twist: Rotate one part of a copper rod relative to the other.
- Punching: Creating holes in red-hot copper.
· Key Points:
- Strike while the iron is hot: Forging must be performed continuously and rapidly while the copper is hot. Once the temperature drops below the recrystallization temperature (approximately 500°C), the material must be reheated in the furnace.
- Multiple heat treatments: Complex workpieces typically require repeated cycles of heating, forging, and reheating to achieve the desired properties.
Step 4: Cool down
After forging, the cooling method of the workpiece has a direct effect on its final properties.
- Air cooling: Natural cooling in air. This is the most commonly used method, resulting in more uniform tissue distribution.
- Water cooling/quenching: For certain copper alloys with specific requirements, rapid cooling may be employed to achieve particular properties, though pure copper rarely utilizes this method.
Step 5: Subsequent Processing and Finishing
Forging is only the forming of the blank, to become a qualified product, it also needs a series of follow-up processing.
- Heat treatment (annealing): After forging, the copper material has work hardening and residual stress. Through annealing treatment, the grain size can be refined, plasticity can be restored, and stress can be eliminated.
- Cleaning: Remove the oxide scale (copper slag) and oil contamination from the forging surface.
- Correction: Corrects minor deformations that may occur during the cooling process.
- Mechanical finishing:
- Cutting: Remove excess material and flash to achieve precise dimensions.
- Welding: For complex structures, multiple forged components may need to be professionally welded together.
- Polishing: Enhances surface smoothness to meet decorative or functional requirements.
- Drilling/Drilling: Create holes and threads for installation.


