Numerical control processing method for aluminum alloy high-precision flat bottom hanging hole
A processing method and high-precision technology, applied in the field of mechanical processing, can solve the problems of large cutting force, poor processing accuracy, and inability to fully meet the accuracy requirements of flat-bottomed hanging holes, etc., to improve processing quality and efficiency, and simplify processing difficulty. Effect
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Embodiment 1
[0039] The present invention is realized through the following technical solutions, as Figure 1-Figure 4 As shown, a numerical control machining method for high-precision flat-bottomed hanging holes in aluminum alloys specifically includes the following steps:
[0040] Step S1: parts clamping;
[0041] Step S2: initial hole processing; specifically includes the following steps:
[0042] Step S21: Determine the diameter of the initial machining hole as φ F , the diameter of the final hole is φ, and the diameters of the final hole and the initial hole satisfy: φ-φ F ≥1mm and the initial hole is coaxial with the final hole;
[0043] Step S22: Select the milling tool as the initial hole processing tool, and use the milling method to process the initial hole; the bottom tooth radius R of the milling tool and the hole bottom angle diameter φ R Consistent, the length-to-diameter ratio of the milling tool is less than 4:1;
[0044] Step S23: Machining; specifically refers to: us...
Embodiment 2
[0055] This embodiment is further optimized on the basis of the above embodiments, such as figure 1 , image 3 As shown, further, in order to better realize the present invention, the step S3 specifically includes the following steps:
[0056] Step S31: Select a boring tool as a boring tool; specifically, when selecting a boring tool, the corresponding boring tool should be selected according to the characteristics of the boring hole, and the minimum boring diameter of the boring tool is D 1 , the maximum boring diameter of the boring tool is D 2 , satisfying D 1 ≤φ F ≤φ≤D 2 ;
[0057] Step S32: Determining the depth L of the boring T ; L T = L H -φ R -0.5; so as to effectively avoid milling to the fillet at the bottom of the hole during processing.
[0058] Further, in order to better realize the present invention, the step S3 also includes a step S33: after the boring tool, the retraction speed is consistent with the processing speed, so as to avoid scratching the ...
Embodiment 3
[0061] This embodiment is further optimized on the basis of the above embodiments, such as figure 1 , Figure 4As shown, further, in order to better realize the present invention, the step S4 includes the following steps:
[0062] Step S41: Determine the base angle R of the machining tool according to the fillet angle at the bottom of the hole, satisfying R=φ R ;
[0063] Step S42: The bottom angle of the root is processed by the three-coordinate sequential milling method of circular arc advance and retreat; during processing, the axial and radial directions are not layered during processing, and the processing is completed in one cut, leaving margins on the side and bottom.
[0064] Further, in order to better realize the present invention, the radius of the circular arc advancing and retreating knife is 5mm, and the angle with the horizontal direction is 3°.
[0065] It should be noted that, through the above improvements, margins are left on the side and bottom surfaces ...
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