Baoji Hengyuxin Metal Co., Ltd.

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+86-18740677522
+86-0917-6735123
Baoji Hengyuxin Metal Co., Ltd.
Contacts:Bella
Tel:+86-0917-6735123
Phone:+86-18740677522
Email:[email protected]
Address:No.168 Gaoya Village Industrial Zone,Bayu Town,Gaoxin Development District,Baoii,shaanxi.China
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Is titanium alloy a difficult to machine material?

Release time:2023-04-23 19:05:50 丨 Number of visits:

Why do we think titanium alloy is a difficult to machine material? Because there is a lack of profound understanding of its processing mechanism and phenomena!


1. Physical phenomena of titanium processing


The cutting force during titanium alloy processing is only slightly higher than that of steel with the same hardness, but the physical phenomenon of processing titanium alloy is much more complex than that of processing steel, which makes titanium alloy processing face enormous difficulties.


Most titanium alloys have very low thermal conductivity, only 1/7 of steel and 1/16 of aluminum. Therefore, the heat generated during the cutting process of titanium alloy will not be quickly transferred to the workpiece or carried away by the chips, but will accumulate in the cutting area, resulting in a temperature of up to 1000 ℃ or above. This causes the cutting edge of the tool to wear, crack, and generate chip deposits, resulting in the rapid appearance of worn cutting edges and the generation of more heat in the cutting area, further shortening the tool's lifespan.


The high temperature generated in the cutting process simultaneously destroys the surface integrity of titanium alloy parts, leading to the decline of the geometric accuracy of parts and the appearance of work hardening that seriously reduces their fatigue strength.


The elasticity of titanium alloys may be beneficial for the performance of parts, but during the cutting process, the elastic deformation of the workpiece is an important cause of vibration. The cutting pressure causes the "elastic" workpiece to detach from the tool and rebound, resulting in greater friction between the tool and the workpiece than the cutting effect. The friction process also generates heat, exacerbating the problem of poor thermal conductivity of titanium alloys.


When machining thin-walled or circular parts that are prone to deformation, this problem becomes even more serious. It is not an easy task to machine titanium alloy thin-walled parts to the expected dimensional accuracy. Because as the workpiece material is pushed away by the tool, the local deformation of the thin wall has exceeded the elastic range, resulting in plastic deformation, and the material strength and hardness at the cutting point significantly increase. At this point, machining at the originally determined cutting speed becomes too high, further leading to sharp tool wear.


Heat is the culprit behind the difficulty in processing titanium alloys!


2. Process tips for processing titanium alloys


On the basis of understanding the processing mechanism of titanium alloy and adding previous experience, the main process tips for processing titanium alloy are as follows:


(1) Adopting a blade with a positive angle geometric shape to reduce cutting force, cutting heat, and workpiece deformation.


(2) Maintain a constant feed to avoid hardening of the workpiece. During the cutting process, the tool should always be in the feed state. During milling, the radial feed a e should be 30% of the radius.


(3) High pressure and high flow cutting fluid is used to ensure the thermal stability of the machining process and prevent surface deformation of the workpiece and tool damage caused by excessive temperature.


(4) Keeping the blade edge sharp and blunt is the cause of thermal accumulation and wear, which can easily lead to tool failure.


(5) Try to machine in a soft state of titanium alloy as much as possible, as the material becomes more difficult to machine after quenching, and heat treatment improves the strength of the material and increases blade wear.


(6) Use a large tip arc radius or chamfer to cut in as much of the blade as possible. This can reduce the cutting force and heat at each point, preventing local damage. When milling titanium alloys, the cutting speed has a significant impact on the tool life VC among various cutting parameters, followed by the radial feed (milling depth) AE.


3. Starting from the blade to solve the problem of titanium processing


The blade groove wear during titanium alloy machining is a localized wear along the cutting depth direction at the back and front, often caused by the hardened layer left by the previous machining. The chemical reaction and diffusion between cutting tools and workpiece materials at processing temperatures exceeding 800 ℃ are also one of the reasons for the formation of groove wear. Because during the machining process, titanium molecules from the workpiece accumulate in front of the blade and "weld" to the blade under high pressure and high temperature, forming a buildup of chips. When the chip buildup is peeled off from the blade, the hard alloy coating of the blade is removed, therefore, titanium alloy processing requires special blade materials and geometric shapes.


4. Tool structure suitable for titanium processing


The focus of titanium alloy processing is heat, and a large amount of high-pressure cutting fluid needs to be sprayed onto the cutting edge in a timely and accurate manner in order to quickly remove heat. There are unique structures of milling cutters specifically designed for titanium alloy processing on the market.



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Baoji Hengyuxin Metal Co., Ltd.
Tel:+86-0917-6735123
   +86-18740677522
E-mail:[email protected]
Add:No.168 Gaoya Village Industrial Zone,Bayu Town,Gaoxin Development District,Baoii,shaanxi.China
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