Milling long and slender workpieces is one of the most demanding processes in machining. Even in modern machining centres and when using high-quality tools, the problem of vibrations can significantly reduce production stability, lengthen cycle times and increase the number of quality defects. In industrial practice, minimising vibrations is one of the prerequisites for achieving repeatability and cost-effectiveness in mass production, whilst also being one of the greatest challenges. So how can vibrations be reduced during CNC milling?
In this article, you will learn:
Let’s start by explaining what the causes of vibration are when milling long workpieces. In manufacturing processes, there is almost never a single factor responsible for process instability – most often it is a combination of low workpiece rigidity, incorrect selection of cutting parameters, tool geometry and the clamping method. Turning long shafts with supports can present a similar challenge.
It is important to bear in mind that long, slender workpieces are particularly prone to resonance, as the cutting forces cause them to deflect, which in turn alters the contact conditions between the cutting edge and the material. This phenomenon leads to feedback and, consequently, to self-excited vibrations. Understanding these mechanisms is fundamental to the effective optimisation of CNC milling services for long workpieces.
Chatter in CNC machining refers to self-excited vibrations arising at the interface between the tool and the material, which rapidly lead to the destabilisation of the cutting process. It manifests itself as a characteristic metallic sound and a visible deterioration in surface quality.
As Paweł Chojnacki, an expert at RADMOT, emphasises, chatter in CNC machining is a problem that cannot be ignored:
“In practice, chatter not only leads to quality issues with the manufactured components, but also shortens tool life and increases production costs. The stability of the cutting process is therefore one of the key factors determining the profitability of large-scale production.”
More specifically, chatter leads to:
Long workpieces behave like flexible beams – under the influence of cutting forces, they deflect and return to their original position. Even minimal deformation therefore causes a change in the thickness of the cut layer, which destabilises the process and leads to vibrations.
The greater the ratio of length to cross-sectional area, the greater the susceptibility to deflection. In the case of thin-walled aluminium components, the problem is particularly pronounced, as the material further promotes the occurrence of resonance.
Tool overhang is one of the factors influencing machining stability that is somewhat underestimated. You must be aware that every – and we emphasise this: every – additional millimetre of overhang increases the cutter’s susceptibility to deflection and vibrations. As a result, even a very rigid machining centre may operate unsteadily.
Excessive overhang causes:
As we have already mentioned, vibration during the milling process is not just a problem for surface quality. Vibration during CNC milling also results in tangible financial losses due to a shorter tool life, a higher number of defects and longer production times. In medium- and large-scale production, process stability is essential for maintaining predictable costs and on-time deliveries.
The good news is that there are a number of proven technological methods that can significantly reduce vibrations and stabilise the machining process.
The method of workpiece clamping is of fundamental importance to the stability of the entire process. Even the best-selected cutting parameters will not produce the expected results if the workpiece is not properly supported. In practice, this means that the design of the clamping system is often just as important as the selection of the tool.
The following aspects should be taken into account here:
In the case of long workpieces, the use of support clamps and supports significantly increases the rigidity of the setup. Additional support points limit workpiece deflection, stabilise the process and enable the use of more efficient cutting parameters. In mass production, proper workpiece support can determine the profitability of the entire project.
Modern clamping systems allow forces to be distributed evenly and localised stresses to be reduced. Vacuum clamping is suitable for thin-walled aluminium components, whilst magnetic systems ensure stability when machining steel and cast iron.
Cutting parameters directly influence the forces acting on the tool and the workpiece. Optimising them correctly can significantly reduce the risk of resonance and chatter:
Modern cutting tools are designed to operate under conditions of limited system rigidity – precisely where conventional milling cutters and standard tool holders fail to ensure process stability. Contemporary tool design takes into account the dynamic phenomena occurring during machining, and manufacturers are placing increasing emphasis on minimising resonance, reducing cutting forces and improving vibration damping.
The appropriate choice of tool often allows for a significant increase in process stability without the need for radical changes to machining parameters.
Milling cutters with irregular cutting edge spacing are designed to ‘break up’ the repetitive nature of cutting force pulses. The variable tooth pitch causes the frequency of these pulses to be dispersed, making it much more difficult to induce self-excited vibrations. In practice, this translates into quieter tool operation, better surface quality and the ability to use more efficient cutting parameters, particularly when machining long and slender workpieces.
Specialised tool holders fitted with vibration damping systems act as shock absorbers between the spindle and the tool. They rely on the use of materials and mechanisms capable of absorbing vibration energy, which significantly reduces the amplitude of vibrations transmitted to the milling cutter.
A machine park with high-rigidity milling machines is often not enough. The right machining strategy can significantly reduce the risk of vibration, even with highly demanding workpieces:
How can you tell if vibrations are a problem during machining?
Vibrations are most commonly indicated by a characteristic noise and a wavy surface finish. In addition, faster tool wear is observed.
Is it better to reduce the speed or the feed rate when vibrations occur?
It usually starts with reducing the rotational speed. The feed rate and cutting depth are then adjusted.
What are the maximum lengths of workpieces that can be milled without vibration?
There is no single figure – it all depends on the material and the clamping method. The length-to-cross-section ratio is key.
Does 5-axis milling help to reduce vibrations?
Yes, simultaneous 5-axis milling minimises vibrations, as it allows the tool overhang to be reduced and the cutting angle to be optimally set. This significantly increases process stability.
How much does a vibration-damping system for a milling machine cost?
The cost depends on the scale of production and the type of tool holders. The most important thing is that, in series production, the investment pays for itself quickly.