METHOD FOR THE PRODUCTION OF A CONNECTING ROD
20190249710 ยท 2019-08-15
Assignee
Inventors
Cpc classification
B22F3/162
PERFORMING OPERATIONS; TRANSPORTING
F01M1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B22F5/10
PERFORMING OPERATIONS; TRANSPORTING
F16C33/145
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B22F3/162
PERFORMING OPERATIONS; TRANSPORTING
B22F2998/10
PERFORMING OPERATIONS; TRANSPORTING
F16C2360/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B22F2998/10
PERFORMING OPERATIONS; TRANSPORTING
F16C7/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2220/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method produces a connecting rod from a sintered material, which rod has at least one bore having a center axis, and has a first connecting rod eye in a connecting rod head, and a second connecting rod eye in a connecting rod foot, wherein the connecting rod head is connected with the connecting rod foot with a connecting rod shaft, wherein the bore is configured in the connecting rod shaft, wherein furthermore, the connecting rod is produced from a metallic powder, in accordance with a sintering process, for which purpose the powder is pressed into the corresponding mold to form a green compact, the bore is introduced into the green compact, and the green compact is afterward sintered. The bore is introduced into the green compact as a first and second partial bore, proceeding from the connecting rod foot and from the connecting rod head.
Claims
1. A method for the production of a connecting rod (1) from a sintered material, which rod has at least one bore (7) having a center axis (8), and has a first connecting rod eye (2) in a connecting rod head (4), and a second connecting rod eye (3) in a connecting rod foot (5), wherein the connecting rod head (4) is connected with the connecting rod foot (5) with a connecting rod shaft (6), wherein the bore (7) is bored in the connecting rod shaft (6), wherein furthermore, the connecting rod (1) is produced from a metallic powder, in accordance with a sintering process, for which purpose the powder is pressed into the corresponding shape to form a green compact, the bore (7) is introduced into the green compact, and the green compact is afterward sintered, wherein the bore (7) is introduced into the green compact as a first and second partial bore, proceeding from the connecting rod foot (5) and from the connecting rod head (4).
2. The method according to claim 1, wherein the bore (7) is produced from the two partial bores, each of the partial bores representing the half of the bore (7).
3. The method according to claim 1, wherein the first and the second partial bore are produced simultaneously.
4. The method according to claim 1, wherein a bore (7) is produced, which has a diameter x and a drilled length (13) in the direction of the center axis (8) of at least 2x.
5. The method according to claim 4, wherein the bore (7) is produced with a diameter of x2 mm.
6. The method according to claim 1, wherein a ring groove (14) is formed in a starting region of the first partial bore and/or the starting region of the second partial bore.
7. The method according to claim 1, wherein the green compact is held using a clamping apparatus (17) during production of the bore (7).
8. The method according to claim 7, wherein a clamping apparatus (17) is used on which the green compact can support itself two-dimensional.
9. The method according to claim 1, wherein a clamping apparatus (17) is used, which has at least one guide element (20) for at least one drill (11, 12), with which the at least one bore (7) in the green compact is produced.
10. The method according to claim 9, wherein the green compact is laid against the guide element (20).
11. The method according to claim 1, wherein the green compact has pressure applied to it during production of the at least one bore (7).
12. The method according to claim 1, wherein a drill (11, 12) is used, which has at least one channel in its interior, wherein this channel has an exit opening that is configured at a front end region of the drill (11, 12).
13. A connecting rod (1) made from a metallic sintered material, which connecting rod has at least one bore (7) having a center axis (8), a first connecting rod eye (2) in a connecting rod head (4), and a second connecting rod eye (3) in a connecting rod foot (5), wherein the connecting rod head (4) is connected with the connecting rod foot (5) with a connecting rod shaft (6), wherein the bore (7) is arranged in the connecting rod shaft (6), wherein the bore (7) is introduced into a green compact for the connecting rod (1), wherein the bore (7) is introduced into the green compact as a first and second partial bore, proceeding from the connecting rod foot (5) and from the connecting rod head (4).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Other objects and features of the invention will become apparent from the following detailed description considered in connection with the accompanying drawings. It is to be understood, however, that the drawings are designed as an illustration only and not as a definition of the limits of the invention.
[0022] In the drawings,
[0023]
[0024]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0025] As an introduction, it should be stated that in the different embodiments described, the same parts are provided with the same reference symbols or the same component designations, wherein the disclosures contained in the description as a whole can be applied analogously to the same parts having the same reference symbol or the same component designations. Also, the position information chosen in the description, such as at the top, at the bottom, on the side, etc., for example, refers to the figure being directly described and shown, and this position information should be transferred analogously to a new position in the case of a change in position.
[0026] As was already discussed in the introduction, the invention relates to a method for powder-metallurgical production of a connecting rod 1, as can be seen in
[0027] Powder-metallurgical methods (sintering methods) as such are known from the state of the art, so that further explanations regarding the fundamental method of procedure are not necessary. For the sake of completeness of the present description, it will only be mentioned that these methods at least comprise the steps of pressing of a metallic powder to form a green compact, and sintering of the green compact at an elevated temperature (for example between 900 C. and 1300 C.). If necessary, the sintered component can subsequently also be calibrated in a calibration die. It is furthermore possible that the connecting rod 1 is hardened during sintering and/or after sintering. For hardening during sintering, a metallic powder that can be sinter-hardened can be used, as known from the state of the art. Hardening after sintering can take place, for example, by quenching the connecting rod 1 from the sintering heat.
[0028] The connecting rod 1 comprises a small or first connecting rod eye 2 and a large or second connecting rod eye 3. The small connecting rod eye 2 is configured in a connecting rod head 4, and the large connecting rod eye is configured in a connecting rod foot 5. The connecting rod head 4 is connected with the connecting rod foot 5 by way of a connecting rod shaft 6. Furthermore, a bore 7 is configured in the connecting rod shaft 6, which bore serves as a lubricant channel, as mentioned above. The bore 7 extends continuously from the small connecting rod eye 2 to the large connecting rod eye 3.
[0029] The bore 7 of the connecting rod 1 has a center axis 8. Furthermore, the connecting rod 1 has a second bore 9 along the center axis 8, separated from the bore 7 by the large connecting rod eye 3 and the small connecting rod eye 2, as well as a third bore 10.
[0030] For the sake of completeness, it should be mentioned that the connecting rod 1 is preferably configured in one piece, in other words, in particular, does not have a bearing cover that is separated by a break or has been produced to be separated in some other way.
[0031] Production of the bore 7 takes place after pressing of the metallic powder to form a green compact and before sintering of the green compact. For this purpose, first the second and the third bore 9, 10 are produced, in order to thereby have access to the connecting rod shaft 6. The bore 7 itself is produced from two partial bores. The first partial bore is introduced into the green compact from the second bore 9, and a second partial bore is introduced into the green compact from the third bore 10. This is indicated in
[0032] In the event, which is not preferred, that the connecting rod 1 has a removable bearing cover, it is possible to do without the second bore, if applicable.
[0033] The second bore 9 can also be produced using the drill 11, and the third bore 10 can be produced using the drill 12. However, the second bore 9 and the third bore 10 can also be produced independent of the bore 7 in the connecting rod shaft 6. The second and the third bore 9, 10 can have the same diameter as the bore 7 in the connecting rod shaft 6. However, they can also have a greater diameter.
[0034] Furthermore, it is preferred if the two drills 11, 12 have the same diameter.
[0035] In
[0036] Drills without a tip can be used as drills 11, 12, so that the two drills 11, 12 do not interfere with one another while drilling. However, drills 11, 12 with a tip can also be used. In this case, one of the two drills 11, 12 must be retracted before the bore 7 is produced in its entirety. The rest of the remaining center part in the connecting rod shaft 6 is then drilled to finish it using only one of the two drills 11, 12, so that therefore in this case, too, the bore 7 is continuous.
[0037] Merely for the sake of completeness, it should be mentioned that the second partial bore is structured to run coaxially to the first partial bore. Therefore the center axes of the drills 11, 12 run coaxially to the center axis 8 of the bore 7 during drilling.
[0038] Fundamentally, it is possible to produce a drilled length 12 of the bore 2 that is 0% to 100% of the drilled length 13, using a drill 11, 12. Preferably, however, the bore 7 is produced from the two partial bores, each representing half. In other words, each of the two partial bores comprises 50% of the bore 7.
[0039] Fundamentally, the method can be used for bores 7 having any diameter. Preferably, however, the method is used for bores 7 that have a relatively small diameter and, in comparison, a greater drilled length 12. In particular, bores 2 that have a diameter x and a drilled length 13 in the direction of the center axis 8 of at least 2x, in particular at least 3x or at least 4x, preferably between 2x and 30x, particularly preferably between 2x and 20x, are produced using the method. In particular, the diameter can be 2 mm, preferably 1.5 mm.
[0040] As indicated in
[0041] Preferably, the green compact is clamped for drilling in a clamping apparatus 17, parts of which can be seen in
[0042] The clamping apparatus 17 for production of the bore 7 in the green compact produced using powder metallurgy is preferably configured in such a manner that planar contact with the green compact is possible. For this purpose, the clamping apparatus 17 can have multiple clamping jaws 18, 19. In particular, at least two clamping jaws 18, 19 are used. The clamping jaws 18, 19 replicate the outer contour of the sintered component 1 in the region of the bore 7, and thereby planar contact of the connecting rod 1 in this region is achieved. The connecting rod 1 can only be clamped in the region of the bore 7 to be introduced. However, it is also possible that a comparatively greater region of the connecting rod 1 or the entire connecting rod 1 is clamped in place, in other words, for example, also in the region of the two connecting rod eyes 2, 3, as indicated with a broken line in
[0043] Furthermore, the clamping jaws 18, 19 can be configured to be adjustable in the clamping direction. However, it is also possible that the clamping apparatus 17 is adapted to the size of an embodiment variant of the connecting rod 1, so that the clamping apparatus 17 can only be used for production of this one embodiment of the connecting rod 1, but on the positive side does not have any moving parts.
[0044] The inner surfaces of the clamping jaws 18, 19, which surfaces are brought into contact with the outer surface of the green compact, are preferably structured to be smooth.
[0045] Furthermore, according to a different embodiment variant, the clamping apparatus 17 can have at least one guide element 20 for the drill(s) 11, 12, as can be seen from the broken line in
[0046] To pass the drill through, the guide element 20 has a continuous bore or recess 21.
[0047] According to a further embodiment variant of the clamping apparatus 17, the at least one guide element 20 (multiple guide elements 20 can also be present, for example a guide element 20 per partial bore) can be laid against the green compact in the region of the bore 7.
[0048] Together with the clamping apparatus 17, the green compact can be laid into a green compact drilling apparatus. In this green compact drilling apparatus, the at least one bore 7 is produced. This green compact drilling apparatus can have the two drills 11, 12, so that the bore 7 can be produced in one work step. For this purpose, the green compact drilling apparatus can have two drilling machines.
[0049] To hold the clamping apparatus 17, the green compact drilling apparatus can have a holding apparatus. This holding apparatus can be configured in block shape. Furthermore, the mass of the holding apparatus can be used to cool the green compact during drilling.
[0050] In addition or alternatively to this, cooling using a cooling fluid can also take place. For this purpose, according to one embodiment variant, a drill 11, 12 can be used, which has at least one channel that extends in its interior. In particular, the channel extends over the entire shaft length of the drill 11, 12 and ends in the front end region of the drill 11, 12, in other words, for example, at the drill tip, in an exit opening. A fluid, for example a cooling oil or compressed air, can be supplied by way of the channel.
[0051] The at least one channel (preferably, multiple channels are configured) can run in a straight line. Likewise, an at least approximately spiral-shaped or a spiral-shaped progression is possible, in order to thereby be better able to cool the shaft of the drill 11, 12.
[0052] Furthermore, according to one embodiment variant of the method, it can be provided that the green compact has pressure applied to it during production of the bore 7. This pressure can be applied to the green compact by way of the clamping jaws 18, 19 of the clamping apparatus 17, for example. Alternatively or in addition to this radial pressure application, the green compact can also have pressure applied to it in the direction of the center axis 8, using corresponding clamping elements and/or the guide elements 20, during drilling.
[0053] According to the invention, a connecting rod 1 can therefore be produced, which has at least one bore 7 having a center axis 8, a first or small connecting rod eye 2 in a connecting rod head 4, and a second or large connecting rod eye 3 in a connecting rod foot 5, wherein the connecting rod head 4 is connected with the connecting rod foot 5 with a connecting rod shaft 6, wherein the bore 7 is configured in the connecting rod shaft 4, wherein furthermore, the bore 7 is introduced into a green compact for the connecting rod 1. The bore 7 is introduced into the green compact as a first and second partial bore, proceeding from the connecting rod foot 4 and from the connecting rod head 5.
[0054] Since the bore 7 has been introduced before sintering of the green compact, its side wall 22 can have a rough surface caused by sintering.
[0055] The term rough surface caused by sintering refers to the surface composition of the sintered component 1, which is present after sintering and is not or has not been subjected to any further material-removing or compacting processing.
[0056] The exemplary embodiments show or describe possible embodiment variants, wherein combinations of the individual embodiment variants with one another are also possible.
[0057] For the sake of good order, it should be pointed out, in conclusion, that for a better understanding of the structure of the sintered component 1, this structure is not necessarily shown to scale.
[0058] Although only a few embodiments of the present invention have been shown and described, it is to be understood that many changes and modifications may be made thereunto without departing from the spirit and scope of the invention.
TABLE-US-00001 Reference Symbol List 1 connecting rod 2 connecting rod eye 3 connecting rod eye 4 connecting rod head 5 connecting rod foot 6 connecting rod shaft 7 bore 8 center axis 9 bore 10 bore 11 drill 12 drill 13 drilling length 14 ring groove 15 side wall 16 side wall 17 clamping apparatus 18 clamping jaw 19 clamping jaw 20 guide element 21 recess 22 side wall