Thread Content
With the development of CNC thread milling technology, particularly the advent of three-axis machining centers, CNC thread milling has gradually gained widespread recognition in the machinery manufacturing industry. Furthermore, it is well known that threads can be obtained using the traditional thread machining methods we are familiar with, among which tapping is the most similar to thread milling. Because they both form threads through the relative rotational motion between the tool and the workpiece. So, when faced with different working conditions, how do we choose the appropriate approach? This article tells you their exact meaning. Conditions for CNC thread milling: 1. A machining center with 3-axis motion (or more). 2. The thread length should not exceed 3 times the length of the tool’s cutting edge. Advantages of CNC thread milling: 1. Thread mills can be used to create threads of different diameters while maintaining the same shape. For example, by using a threaded mill to change the interpolation radius to machine M15x1.0, M18x1.0, and M20x1.0 threads, the number of tools required can be reduced, tool-changing time can be saved, efficiency can be improved, and tool management can be simplified. 2. It improves the accuracy and finish of the threads. Thread milling is accomplished through the high-speed rotation of the tool and spindle interpolation. The cutting method is milling; the cutting speed is high, and the resulting threads are aesthetically pleasing ; The tap has a low cutting speed and produces long chips, which can easily damage the inner hole surface. 3. Easy discharge through the internal thread. Milling threads involves chip breaking; the chips are short, and the diameter of the cutting tool is smaller than that of the thread hole being machined, so the chips can be removed easily ; During continuous cutting with a tap, the chips are long, and since the diameter of the tap is the same as that of the hole being machined, it is difficult to remove the chips. 4. If a tap is used, it is certainly possible to use electric discharge to break off the broken part, but the process will be very complex; if damage is caused to the part, there will be losses. If a threaded milling cutter is used, first of all, it is not easy to break due to the low force applied ; Even if it breaks, since the diameter of the machined hole is larger than that of the tool, the broken part can be easily removed. In terms of product output, thread milling is much higher than tap turning. 5. It is not easy to form viscous chips. For softer materials, sticky chips are easily generated during processing, but thread milling rotates at high speed to break the chips. The tap’s cutting speed is low; the entire thread and the machined surface are involved, which makes it easy for debris to adhere. 6. The machine is required to have low power consumption. 7. Due to chip breaking in thread milling, there is partial tool contact, resulting in low cutting forces; whereas with a tap, there is full thread contact, leading to high forces, thus requiring a machine with high power. 8. Damaged tools are easy to handle. Firstly, thread mills experience less stress and rarely break. If this occurs, since the machining aperture is larger than the tool, the broken part can be easily removed ; Taps are subject to high stress, have poor chip removal, are prone to breaking, and result in larger holes after breakage. It is slightly easier to handle; however, small holes present difficulties. For example, when machining ordinary threads, thread milling is not cost-effective considering the cost per unit. Plain threads are classified as those with a general hardness of less than 50HRC and a diameter of less than 38 mm, although this is not a clear dividing line. Ordinary tap screws are generally made of high-speed steel, with market prices ranging from a few dozen dollars; however, the price of thread milling cutters is more than 10 times higher, and their service life per piece is no more than 10 times that of tap screws. Secondly, the aspect ratio should not be too large; typically, an L/D ratio of 50 is required. This configuration is suitable for thread milling, as it facilitates chip breaking, results in less local contact with the tool, and the cutting inserts are made of cemented carbide, which reduces wear and extends their service life. Conventional high-speed steel taps simply cannot be used for this purpose. For example, integral cemented carbide taps are not inexpensive, and their cost is similar to that of thread milling cutters. Based on our existing processing experience, the efficiency and cost-effectiveness of thread milling are definitely superior to those of taping. 2. Machining of composite holes (with chamfers) is also suitable for thread milling. Thread mills have many functions and can be integrated into threading and chamfering. 3. Thin-wall machining is suitable for thread milling; the machining force exerted by thread mills is low, resulting in minimal deformation. Additionally, the counterbore can be made flat, and the thread can be placed close to the counterbore; thus, very little space is required. 4. For machining with high thread precision, thread milling offers a higher thread speed, good chip removal performance, higher thread precision, and better surface finish, making it more suitable for this type of processing. 5. The material is soft and made of titanium alloy, making it suitable for thread milling, as thread mills do not tend to generate sticky debris. For unstable cutting, the thread mill can fully adapt to such conditions, as its cutting principle is inherently intermittent milling.
Thread milling and tap turning are two common methods for manufacturing threads in the manufacturing industry. Different processing conditions and requirements will influence the choice of which method is more suitable. The following are some scenarios and considerations to determine when to use thread milling rather than tap machining: 1. **Materials with high hardness**: Materials with high hardness (such as those with a hardness greater than 50HRC) are better suited for thread milling, as this process facilitates chip breaking, and cemented carbide tools offer better wear resistance. 2. **Wide range of thread diameters, lengths, and tolerance values**: Thread milling allows for the flexible machining of threads with different diameters and shapes without the need to change tools, making it suitable for a variety of thread processing requirements. 3. **Thin-walled and complex-shaped workpieces**: Thin-walled or complex-shaped workpieces tend to deform when using taps, whereas thread milling can effectively reduce deformation due to its lower cutting forces. 4. **Chip removal**: The chips generated by thread milling are short, making them easier to remove, especially when machining internal threads in deep holes. 5. **Risk of broken tool and handling**: If the tool breaks, a thread mill can be removed more easily than a tap, as the diameter of a thread mill is usually smaller than that of the hole being machined. 6. **High precision requirements**: For applications with high demands on thread precision and surface finish, thread milling usually yields better results. 7. **Processing efficiency**: In some cases, the machining speed of thread milling is higher, especially when processing hard materials or in large-scale production. 8. **Machine power requirements**: The power requirement for thread milling is usually lower than that for tap machining, due to lower cutting forces. 9. **Position and shape of the threads**: If the threads are close to the bottom hole or if the hole has a special shape, thread milling may be a better option. Of course, tap machining may be a more economical choice in some cases, especially when the material to be machined is not particularly hard, the thread diameter is small, and in single-piece or small-batch production. Taps are also suitable for some conventional threading tasks, especially when cost sensitivity is high. Overall, thread milling offers greater flexibility and performance under harsh conditions, but it may have higher costs and equipment requirements. Based on specific machining requirements, materials, workpiece characteristics, production volume, and cost considerations, the most suitable thread machining method can be selected. .