Drill Ring for a Core Drill Bit
20180001512 · 2018-01-04
Assignee
Inventors
Cpc classification
B28D1/041
PERFORMING OPERATIONS; TRANSPORTING
B28D1/12
PERFORMING OPERATIONS; TRANSPORTING
B23B51/042
PERFORMING OPERATIONS; TRANSPORTING
International classification
B28D1/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A drill ring for a cylindrical core drill bit is disclosed. The drill ring includes at least two ring segments which are constructed from a sintered powder mixture and diamond particles. The diamond particles are arranged on ablation tracks in a plane perpendicular to the cylinder axis and the ring segments are connected to each other on their lateral edges.
Claims
1.-13. (canceled)
14. A drill ring for a cylindrical core drill bit, comprising: at least two ring segments constructed from a sintered powder mixture and diamond particles; wherein the diamond particles are respectively disposed on circular ablation tracks in a plane perpendicular to an axis of the cylindrical core drill bit; wherein the at least two ring segments are connected to each other at respective side edges.
15. The drill ring according to claim 14, wherein the drill ring includes n≧1 first ring segments and n second ring segments and wherein the first and the second ring segments are alternately disposed one behind the other along a circumferential direction of the drill ring.
16. The drill ring according to claim 15, wherein the first ring segments have a diamond-coated area and the second ring segments have a diamond-free area on a respective outer side.
17. The drill ring according to claim 15, wherein the first ring segments are constructed from a sintered first powder mixture and first diamond particles and wherein the second ring segments are constructed from a sintered second powder mixture and second diamond particles.
18. The drill ring according to claim 17, wherein the sintered first powder mixture and the sintered second powder mixture are identical.
19. The drill ring according to claim 17, wherein the first diamond particles and the second diamond particles have a same diamond distribution and a same mean diamond diameter.
20. The drill ring according to claim 17, wherein the first diamond particles are disposed in the plane perpendicular to the axis on a first number of first ablation tracks and wherein the second diamond particles are disposed on a second number of second ablation tracks.
21. The drill ring according to claim 20, wherein the first number of first ablation tracks and the second number of second ablation tracks are identical.
22. The drill ring according to claim 20, wherein first radii of curvature of the first ablation tracks differ from second radii of curvature of the second ablation tracks.
23. The drill ring according to claim 22, wherein the number of ablation tracks and a size of the diamond particles are set such that an average diamond diameter of the diamond particles is at least 45% of a quotient of a width of the drill ring and the number of ablation tracks.
24. The drill ring according to claim 14, wherein at least one water slot is disposed between the at least two ring segments.
25. The drill ring according to claim 24, wherein a height of the at least one water slot is between ⅓ and ⅚ of a total height of the drill ring.
26. The drill ring according to claim 14, wherein at least one ring segment of the at least two ring segments has a bore which connects an inner side and an outer side of the drill ring.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION OF THE DRAWINGS
[0025]
[0026] The drill ring 11 is welded, brazed, or screwed to the drill shaft 12, or fixed to the drill shaft 12 in another suitable manner of attachment. In order to be able to weld the drill ring 11 with the drill shaft 12, the connecting area between the drill ring 11 and the drill shaft 12 must be made of a weldable material and must not contain any diamond particles, as diamond particles cannot be welded.
[0027]
[0028] The drill ring 21 is composed of four ring segments which are connected to one another at the side edges and form a closed ring in the circumferential direction (
[0029]
[0030] The first diamond particles 25 of the diamond layers 32.1-34.1 are arranged on three circular first ablation tracks 42.1, 43.1, 44.1 with different first radii of curvature R.sub.1i, i=1, 2, 3. The second diamond particles 27 of the diamond layers 38.1-40.1 are arranged on three circular second ablation tracks 45.1, 46.1, 47.1 with different second radii of curvature R.sub.2i, i=1, 2, 3. The selection of the materials for the first and second powder mixtures 24, 26, the selection of the diamond distribution and size for the first and second diamond particles 25, 27, and the number m.sub.1, m.sub.2 of the diamond layers and the ablation tracks make it possible to adapt the drill ring 21 to different substrates to be processed.
[0031] The ring segments 22.1, 22.2, 23.1, 23.2 are constructed in layers from three powder layers and three diamond layers. In a layered configuration, the powder mixture is filled into a matrix and forms the first powder layer. The diamond particles are placed in a set pattern as a first diamond layer on the first powder layer. In order to densify the layer structure, intermediate pressing can take place after placing the diamond particles. Subsequently, the powder mixture is filled into the matrix and forms the second powder layer. The diamond particles are placed in a set pattern as a second diamond layer on or in the second powder layer. This process is repeated until the desired height of the green part is reached. A diamond layer is used as the last layer.
[0032]
[0033] The water slots 52.1-52.4 extend over a height of approximately ⅔ of the total height of the drill ring 51. In order to ensure the operational capability of the drill ring 51 even if the water slots 52.1-52.4 are removed, two ring segments have a bore 57.1, 57.2 via which cooling liquid is transported to the processing site.
[0034]
[0035]
[0036] The base surface of the green parts 61 is hexagonal and consists of a rectangle 68 and an adjacent isosceles trapezoid 69, wherein the attachment area 66 of the green part 61 is located in the rectangle 68. In the region of the legs of the trapezoid, the water slots 52.1-52.4 are formed during sintering by additional pressure action, via which the cooling liquid is transported to the processing site. The height h of the trapezoid 69 in the green part defines the height of the water slot 52.1-52.4. In the exemplary embodiment, the height h of the trapezoid 69 corresponds to half the total height H of the green part.
[0037]
[0038] The first ring segment 62 has first and second side edges 71, 72 which are joined to a first and second side edge 73, 74 of the second ring segment 63 during sintering. The first side edge 71 of the first ring segment 62 is connected to the second side edge 74 of the second ring segment 63, and the second side edge 72 of the first ring segment 62 is connected to the first side edge 73 of the second ring segment 63. In the drill ring 51 with two first and second ring segments 62.1, 62.2, 63.1, 63.2, the first and second side edges of the adjacent ring segments are connected to each other.
[0039]
[0040] The temperature action ensures that the powder mixture is sintered in the ring segments and the ring segments are connected to one another at the side edges. Pressure in the axial direction, i.e., parallel to the axis of rotation of the drill ring, causes compression of the ring segments, which leads to densification of the ring segments. Hot pressing is carried out in a die which defines the final shape of the drill ring.