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The software to predict the dynamic behaviours of a whole machining tool structure is developed based upon the procedure.
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This paper describes a novel structural damping method that allows a fabricated (welded) machine tool structure to be designed for minimum cost and maximum dynamic stiffness comparable to polymer concrete structures.
Machine tool structure has a strong influence on the dynamic properties of the tool.
First, the machine tool structure is split up in several components.
This chapter describes an ideal machine tool structure for micro- and nanometer scale processing.
Moreover, the vibrations of the machine tool structure are among the other causes that restrict high speed operations.
Proper machine design, such as increased stiffness and damping of the machine tool structure can broaden the range of stable operating conditions.
A typical machine tool structure in form of an F structure is considered and eigenvalue and response reanalysis are carried out for this structure when modified by constrained viscoelastic damping layer treatment.
Then the machine tool slide of a high speed CNC milling machine was designed and manufactured with composite sandwich structures combined with a welded steel structure––a hybrid machine tool structure.
The machining performance is determined by the frequency characteristics of the machine tool structure and the dynamics of the cutting process, and can be expressed in terms of a stability lobe diagram.
In this study, a small table-top machine tool structure was designed and fabricated by using carbon/epoxy composites and resin concrete to reduce the weight of the structure, and enhance the structural stiffness and damping capacity.
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