Cutting Tool
20210101214 · 2021-04-08
Inventors
Cpc classification
B23C5/28
PERFORMING OPERATIONS; TRANSPORTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
B05B1/044
PERFORMING OPERATIONS; TRANSPORTING
B23B27/10
PERFORMING OPERATIONS; TRANSPORTING
B05B1/14
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The invention relates to a cutting tool, in particular a milling tool, which comprises a tool body on which at least one cutting edge is provided. A coolant supply channel, from which at least one nozzle channel branches off fluidically, extends inside the tool body. The nozzle channel is configured to conduct coolant onto the cutting edge. A flow cross-section of the coolant supply channel is furthermore reduced in one flow direction.
Claims
1. A cutting tool comprising: a tool body on which at least one cutting edge is provided, wherein a coolant supply channel, from which at least one nozzle channel branches off fluidically, extends inside the tool body, wherein the nozzle channel is configured to conduct coolant onto the cutting edge, and wherein a flow cross-section (Q) of the coolant supply channel is reduced in one flow direction.
2. The cutting tool according to claim 1, wherein at least two nozzle channels branch off fluidically from the coolant supply channel.
3. The cutting tool according of claim 1, wherein the at least one cutting edge is provided on a cutting insert which is attached to the tool body.
4. The cutting tool according to claim 1, wherein a plurality of nozzle channels and a plurality of cutting edges are provided and each nozzle channel is associated with a single cutting edge in order to conduct coolant onto the associated cutting edge.
5. The cutting tool according to claim 1, wherein the flow cross-section (Q) of the coolant supply channel decreases substantially continuously over the entire extent of the coolant supply channel in the tool body.
6. The cutting tool according to claim 1, wherein the coolant supply channel extends helically.
7. The cutting tool according to claim 1, wherein at least two chip guide grooves are provided in the tool body, and the coolant supply channel is arranged circumferentially between the chip guide grooves.
8. The cutting tool according to claim 1, wherein the at least one nozzle channel branches off substantially perpendicularly from the coolant supply channel.
9. The cutting tool according to claim 1, wherein an opening-side end cross-section of the nozzle channel is substantially slot-shaped.
10. The cutting tool according to claim 1, wherein a plurality of coolant supply channels are provided, and wherein at least one nozzle channel branches off fluidically from each of the coolant supply channels (24).
11. The cutting tool according to claim 1, wherein a coolant supply chamber is provided on a machine-side end of the tool body, from which the coolant supply channels extend fluidically.
12. The cutting tool according to claim 2, wherein the at least two nozzle channels are spaced apart from one another along a tool body central axis.
13. The cutting tool according to claim 6, wherein the coolant supply channel extends helically around a tool body central axis.
14. The cutting tool according to claim 9, wherein a slot longitudinal axis extends substantially parallel to the associated cutting edge.
15. The cutting tool according to claim 10, wherein all coolant supply channels extend substantially parallel.
16. The cutting tool according to claim 1, wherein the cutting tool is an milling tool.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The invention is explained below with the aid of a design example, which is shown in the accompanying drawings. The figures show:
[0021]
[0022]
[0023]
[0024]
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DETAILED DESCRIPTION
[0027]
[0028] The cutting tool 10 comprises a tool body 12 with a tool body central axis 13, about which it can rotate for the machining of materials. In the embodiment shown, a total of 30 active cutting edges 14 are provided on the tool body 12, of which only a few are provided with a reference sign in
[0029] All of the cutting edges 14 are provided on a respective associated cutting insert 16, which is attached to the tool body 12. Therefore, exactly one active cutting edge 14 is provided by each cutting insert 16. Also of the cutting inserts 16 in
[0030] The overall 30 cutting inserts 16 are arranged along five, substantially parallel spirals 18 on the periphery of the tool body 12. In other words, the cutting inserts 16 are divided into five groups of six cutting inserts 16, wherein the cutting inserts 16 of each group are positioned on the tool body 12 in a helical manner.
[0031] Five chip guide grooves 20 for the reliable removal of chips produced by the cutting edges 14 are provided as well. The chip guide grooves 20 also extend helically.
[0032] The tool body 12 is configured to supply the cutting edges 14 with coolant.
[0033] For this purpose, a coolant supply chamber 22 is provided on a machine-side end of the tool body 12, via which the cutting tool 10 can be supplied with coolant (see in particular
[0034] In the design example shown, five coolant supply channels 24 extend from the coolant supply chamber 22 of which only one can be seen in
[0035] The coolant supply channels 24 extend substantially parallel to one another.
[0036] In the embodiment shown, the coolant supply channels 24 also extend helically with respect to the tool body central axis 13.
[0037] They are furthermore respectively arranged circumferentially between two adjacent chip guide grooves 20. Chip guide grooves 20 and coolant supply channels 24 thus alternate on the periphery of the tool body 12.
[0038] Each of the coolant supply channels 24 has a flow cross-section Q that decreases continuously along a flow direction 25 of the coolant; here, therefore, starting from the coolant supply chamber 22 toward the cutting edges 14.
[0039] Six nozzle channels 26 then branch off fluidically from each of the coolant supply channels 24.
[0040] Each nozzle channel 26 is associated with one of the cutting edges 14 in order to conduct coolant onto it. There is therefore a 1:1 relationship between the nozzle channels 26 and the cutting edges 14.
[0041] The nozzle channels 26 that branch off from a common coolant supply channel 24 are furthermore spaced apart from one another along the tool body central axis 13.
[0042] The distances between the individual nozzle channels 26 are matched to the reduction of the flow cross-section Q of the associated coolant supply channel 24 such that substantially the same pressure prevails at each branch of a nozzle channel 26 from the coolant supply channel 24.
[0043] As is evident in particular based on
[0044] Each nozzle channel 26 also has an opening-side end cross-section 32, which is configured as a rectangular slot in the shown embodiment (see
[0045] A slot longitudinal axis extends substantially parallel to the associated cutting edge 14.
[0046] A coolant jet 34 can thus be directed precisely onto the associated cutting edge 14, so that the entire cutting edge 14 is substantially uniformly supplied with coolant. Ideally, the coolant jet 34 is linear when it hits the cutting edge 14 and is the same length as the cutting edge 14.