Drilling tool
11433462 · 2022-09-06
Assignee
Inventors
Cpc classification
B23B27/16
PERFORMING OPERATIONS; TRANSPORTING
B23B51/06
PERFORMING OPERATIONS; TRANSPORTING
B23B51/0493
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A drilling tool with improved structure to improve chips discharging performance. The drilling tool comprises a cutting insert 60 having a cutting edge 62 at the front end portion and a main body 10 mounted with the cutting insert 60, further, the drilling tool comprises a hollow discharge channel 12 formed inside the main body 10, and the discharge channel 12 has a curved surface 14 for guiding the chips S in a direction towards the base end portion opposite to the front end portion.
Claims
1. A drilling tool comprising: a cutting insert, wherein the cutting insert has a cutting edge at a front end portion; a main body, wherein the main body is mounted with the cutting insert; a hollow discharge channel, wherein the hollow discharge channel is formed inside the main body, and a curved surface formed in an inside surface of the discharge channel for guiding a chip in a direction towards a base end portion opposite to the front end portion, the curved surface extending rearward along a partial length of the discharge channel starting from immediately behind the cutting insert; wherein the curved surface has a helical shape around the rotation axis of the drilling tool.
2. The drilling tool according to claim 1, wherein the hollow discharge channel is formed between a rotation axis of the drilling tool and the outer circumferential surface.
3. The drilling tool according to claim 1, wherein the curved surface is an inclined surface configured to apply an urging force on the chip in a direction towards the base end portion during rotation of the drilling tool.
4. The drilling tool according to claim 1, wherein the curved surface has a concaved shape in a cross section perpendicular to the rotation axis.
5. The drilling tool according to claim 1, wherein the drilling tool is provided with a plurality of cutting inserts, and a plurality of discharge channels being formed to extend from the front end portion to the base end portion and connecting with each other during extending, and the number of the discharge channels are same as the number of the cutting insert.
6. The drilling tool according to claim 5, wherein the plurality of discharge channels are axisymmetrical about the rotation axis of the drilling tool as a center.
7. The drilling tool according to claim 1, wherein the drilling tool further comprises a supporting member, the supporting member is mounted on the base end portion of the main body and supports the main body, and is provided with a hollow flow channel in communication with the discharge channel of the main body.
8. The drilling tool according to claim 1, wherein the drilling tool further comprises a cutting oil feed passage for feeding cutting oil.
9. The drilling tool according to claim 8, wherein the cutting oil feed passage comprises a cutting oil feeding groove formed on a peripheral surface of the main body.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
(16) Embodiments of the disclosure will be explained below in detail with reference to the drawings. The following embodiments are examples for explaining the present disclosure, and are not intended to limit the present disclosure only to the embodiments.
(17) In the embodiment, a drilling tool 1 includes five members: a main body 10, an inner sleeve member 20, an outer sleeve member 30, a bush 40, and a body cover 50. The drilling tool 1 is configured to rotate about the rotation axis 1C as a center, to drill the work material. Cutting inserts 60 with cutting edges 62 are mounted at a front end portion 1A of the drilling tool 1 (see
(18) The five members (the main body 10, the inner sleeve member 20, the outer sleeve member 30, the bush 40, and the body cover 50) shown in the figures, as well as the structure of the drilling tool 1, will be described below.
(19) The main body (the first part) 10 is a bar-shaped component made of metal material and is shaped to extend from a base end 10B to a front end 10A along the rotation axis 1C of the drilling tool 1 (see
(20) The discharge channel 12 forms a flow path through which the chip (indicated by symbol S in
(21) These discharge channels 12 are formed between the rotation axis 1C and the outer circumferential surface 1D of the drilling tool 1, in such a manner as to enable the chips S to move in a direction towards the base end portion 1B during the rotation for drilling (see
(22) The shape of the curved surface 14, i.e., the surface of the discharge channel 12, is not particularly limited. However, in the embodiment, the curved surface 14 has a concaved shape in the cross section perpendicular to the rotation axis 10 (see
(23) During drilling processing by means of drilling tool 1, the discharge channel 12 defined by the above-mentioned curved surface (discharge surface) 14 generates the force (a resistance towards a direction perpendicular to the surface) N acting on the chips S from the curved surface 14 which includes a component of force NB towards the base end portion 1B side and the force guiding in a direction towards the base end portion 1B, to improve chips S discharging performance. From this viewpoint, the curved surface 14 of the discharge channel 12 is preferably formed to provide a force which effectively guides the chips S at any position towards the base end portion 1B.
(24) The mounting base 16 is a base portion for mounting the cutting insert 60. In the embodiment, the front end 10A of the main body 10 are arranged with two mounting bases 16 (see
(25) The ejection openings 17 are openings for ejecting cutting oil (also serving as the coolant) fed from the base end 40B side of the bush 40. In the embodiment, the plurality of radial ejection openings 17 for ejecting cutting oil are disposed in the circumferential direction at an equal interval on the circular conical surface of the cone shape of the outer peripheral surface of the main body 10 (indicated by symbol 10D in
(26) The guiding grooves 18 are grooves for feeding the cutting oil ejected via the ejection openings 17 to the front end portion 1A of the drilling tool 1. In the embodiment, guiding grooves 18, which are helical, are arranged on the outer circumferential surface of the main body 10 (see
(27) The inner sleeve member (the second part) 20 is a cylindrical member that mounted on the base end 10B of the main body 10 (see
(28) Compared with the inner sleeve member 20, the outer sleeve member (the third part) 30 has a greater diameter and a shorter length (a shorter axial length). The outer sleeve member (third part) 30 is a cylindrical member that mounted outside the inner sleeve member 20 (see
(29) The bush (the fourth part) 40 is mounted on the base end 10B side of the main body 10 and functions as a supporting member for supporting the main body 10. The shape and structure of the bush 40 are not particularly limited. However, in the embodiment, the member is designed to have a hollow shape having the hollow flow channel 42 and (see
(30) The body cover (the fifth part) 50 is a member mounted outside the main body 10. In the embodiment, the body cover 50 covers a portion of the outer peripheral surface of the main body 10 which includes the circular conical surface 10D, and the cutting oil feed passage 70 is formed between the body cover 50 and the outer circumferential surface of the main body 10 (see
(31) The steps for assembling the five parts (the main body 10, the inner sleeve member 20, the outer sleeve member 30, the bush 40, the body cover 50) as mentioned above will be described below (see
(32) Inserting the inner sleeve member 20 inside of the outer sleeve member 30, and embedding the base end 30B of the outer sleeve member 30 into the front end 40A of the bush 40 (see
(33) The cutting oil feed passage 70 of the assembled drilling tool 1 is briefly described below (see
(34) The cutting oil fed from the base end 40B of the bush 40 may pass through the cutting oil feed passage 70 which is defined by the gap formed between the inner sleeve member 20 and the bush 40, pass through the cutting oil feed passage 70 which is cylindrical and is formed between the main body 10 and the inner sleeve member 20, and may be ejected through the ejection openings 17. Then, it may pass through the space around the reduced-diameter portion 10E and flow to the guiding groove 18, and then pass through the cutting oil feed passage 70 which includes the guiding groove 18. In this way, the cutting oil is fed to the front end portion 1A of the drilling tool 1.
(35) In the drilling tool 1 of this embodiment, for example, due to the new discharge channel 12 differed from the conventional structure, a force is applied, in a spiral direction, to the cutting oil flowing to the base end portion 1B side. Hence, an pushing force is applied to facilitate the flow (spiral flow) of the cutting oil, thereby improving the performance of discharging the cutting oil and chip S during rotation (see
(36) In addition, due to the hollow main body 10 the inside of which is formed with the discharge channel 12, the drilling tool 1 of this embodiment, for example, can easily obtain high rigidity. That is, though a hollow member is lighter than a solid member, the hollow member can provide similar rigidity as the solid member of the same size. In another word, even from the viewpoint of lightweight design for the drilling tool 1, the main body 10 with the hollow structure is desired.
(37) In addition, with respect to the so-called long drill for deep hole drilling, as a main body with a greater axial length is required, a longer chip pocket is required, and a portion of the main body to be cut is increased. In such case, there is a problem of lack of rigidity relative to the length of the main body. At this point, the drilling tool 1 of this embodiment which includes the hollow main body 10 as mentioned above can solve the problem of lack of rigidity relative to the length of the main body.
(38) It should be noted that, all the above embodiments are merely preferred illustrative embodiments of the disclosure, but are not intended to limit the scope. Various modifications may be obtained without departing from the scope of the disclosure. For example, in the embodiment, the drilling tool 1 as described includes two cutting inserts 60 and two discharge channels 12 in one preferred embodiment. Otherwise, a plurality of (more than three) cutting inserts 60 may be provided, and the same number of discharge channels 12 may be provided, corresponding to respective cutting inserts 60, and formed to extend from the front end 10A to the base end 10B of the main body 10 and converge (connecting) with each other during extending from the front end portion 1A to the base end portion 1B.
(39) In addition, in the above mentioned embodiments, the drilling tool 1 (see