METHOD FOR PRODUCING A PRE-ASSEMBLED SUBASSEMBLY
20240301938 ยท 2024-09-12
Inventors
Cpc classification
F16C43/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2361/53
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2230/0011
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/463
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2226/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2222/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F15/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Method for installation in a balancing shaft (12) with at least one bearing (13, 14) having a needle roller and cage assembly (15) rolling on the bearing (13, 14), is assembled with a slotted needle roller and cage assembly (22), which is opened for mounting on the bearing (13, 14) of the balancing shaft (12), and is placed in the radial direction, to engage around the bearing (13, 14), and is closed after engaging around the bearing (13, 14).
Claims
1. Method for producing a preassembled subassembly for installation in a motor, comprising a balancing shaft with at least one bearing and a needle roller and cage assembly rolling on the bearing, wherein the balancing shaft comprises at least one unbalanced weight portion and at least one bearing, wherein the at least one unbalanced weight portion is associated with the bearing and the bearing has a radial running surface which extends only partially over a periphery of the bearing and the radial running surface is limited by free end regions of the bearing, wherein a centrifugal force resulting upon rotation of the balancing shaft is situated within a region of the bearing which is formed by the running surface extending partially over the periphery of the bearing, the bearing having a depression when viewed in cross-section with respect to the longitudinal direction of the balancing shaft, wherein, a slotted needle roller and cage assembly, which comprises a needle cage with a lock, is opened and the needle cage of the needle roller and cage assembly is provided for mounting on the bearing of the balancing shaft, the needle cage with the opened lock is moved in the radial direction towards the bearing and is placed on the bearing in the radial direction, the needle roller and cage assembly is applied so as to embrace the bearing after it has been fitted, and the lock of the needle roller and cage assembly is closed after engaging around the bearing.
2. Method according to claim 1, wherein the needle cage is placed on the bearing in a radial direction in a first assembly step, so that the one end region of the partial bearing is positioned between closing members of the lock of the spread needle cage.
3. Method according to claim 2, wherein, in a further assembly step, the one closing member is held in position between the end regions of the bearing and/or in the depression of the bearing while a rotary movement of the needle cage is initiated.
4. Method according to claim 3, wherein the rotary movement of the needle cage is carried out until the second closing member of the lock is guided around the running surface of the bearing.
5. Method according to claim 4, wherein the needle roller and cage assembly is closed by connecting the closing members of the lock after the radial engagement around the bearing.
6. Method according to claim 1, wherein the needle cage is fed spread open in the radial direction onto the bearing.
7. Method according to claim 1, wherein the running surface of the bearing is offset radially inwards with respect to an outer circumferential surface of the unbalanced weight portion, so that an end face is formed in each case in a transition region between the running surface and the outer circumferential surface of the unbalanced weight portion.
8. Method according to claim 7, wherein the needle roller and cage assembly is guided in the axial direction towards the bearing at least during assembly or in the installed position by the mutually opposite end faces which adjoin the running surface of the bearing.
9. Method according to claim 7, wherein an enveloping circle of the outer circumferential surface of the unbalanced weight portion, which is larger than an inner diameter of an expanded needle cage of the needle roller and cage assembly the assembly is carried out in the radial direction onto the bearing.
10. Method according to claim 1, wherein a single-row or a double-row needle roller and cage assembly is mounted.
Description
[0018] The invention and other advantageous embodiments and further embodiments thereof are described and explained in more detail below with reference to the examples shown in the drawings. The features to be taken from the description and the drawings can be used individually or in any combination in accordance with the invention. It shows:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029] The pre-assembled assembly 11 comprises a balancing shaft 12, which has at least one bearing 13, 14. In the embodiment example, the balancing shaft 12 comprises two bearings 13, 14. A needle roller and cage assembly 15 is mounted at each bearing 13, 14. These bearings 13, 14 with the needle roller and cage assemblies 15 mounted thereon serve to support the balancing shaft 12 in an engine block.
[0030] At a rear end section 16 of the balancing shaft 12 shown in
[0031] An unbalanced weight portion 18, 19 is provided on one or both sides adjacent to the bearing 14. These are preferably provided symmetrically to the first and second bearings 13, 14. These unbalanced weight portions 18, 19 can be arranged centrally to an axis of rotation 21 of the balancing shaft 12.
[0032] The unbalanced weight portions 18, 19 have an outer circumferential surface 20 which extends only partially in the radial direction. Preferably, this outer circumferential surface 20 of the respective unbalanced weight portion 18, 19 extends at an angle of less than 270?, preferably by 180? or less. This configuration is also dependent on the inertia forces to be balanced.
[0033]
[0034]
[0035] The first and second bearings 13, 14 have a running surface 22 extending partially over the periphery of the bearing 13, 14. This running surface 22 extends at a circumferential angle of, for example, 30-350?. Preferably, the running surface 22 extends at a circumferential angle of 180-220?. An end region 23 is formed at the respective end of the running surface 22. This end region 23 can be rounded, for example. Alternatively, the end region 23 can also be formed by a flattening or by a bevel.
[0036] The bearing 13, 14 has a depression 24 in the cross-section shown in
[0037] The needle roller and cage assembly 15 is designed as a slotted needle roller and cage assembly 15. This needle roller and cage assembly 15 comprises a lock 27 with two closing members 28, 29, which are detachably connected to one another. Preferably, these closing members 28, 29 are clipped together. The needle roller and cage assembly 15 advantageously comprises a needle cage 31, which can be made of plastic, for example. Several needle pockets 33 are provided in the needle cage 31. A needle roller 32 is rotatably mounted in each needle pocket 33. The running surface 22 of the bearing 13, 14 preferably has a precise, in particular ground, surface. In a transition region between the running surface 22 and the adjacent unbalanced weight portion 18, 19, a depression or a insertion can be provided. The needle roller and cage assembly 15 can be guided by the unbalanced weight portions 18, 19 in the axial direction or along the axis of rotation 21 of the balancing shaft 12 secured to the bearing 13, 14.
[0038]
[0039]
[0040] A first engagement position of the needle roller and cage assembly 15 at the bearing 13, 14 is shown in a sectional view in
[0041] Starting from the positioning of the needle roller and cage assembly 15 to the bearing 14 according to
[0042] When positioning the needle cage 31 in a first engagement position at the bearing 13, 14 until the needle roller and cage assembly 15 is fully positioned onto the running surface 22, the needle cage 31 can be guided through the end faces 26. This secures the assembly in the axial direction and can be simplified.
[0043] After the needle roller and cage assembly 15 has been fully pushed onto the running surface 22 of the bearing 13, 14, a part of the needle roller and cage assembly 15 rests against the running surface 22. The closing members 28, 29 can be positioned freely and outside the running surface 22 in the bearing 13, 14, as shown in
[0044] In this arrangement, it is possible for the lock 27 of the needle roller and cage assembly 15 to be closed. The needle roller and cage assembly 15 closed by the lock 27 is mounted and secured to the running surface 22 of the bearing position 13, 14. Due to the periphery of the running surface 22 of the bearing 13, 14 by more than 180?, the needle roller and cage assembly 15 is held in a rolling position relative to the bearing 14.
[0045] Once the needle roller and cage assembly 15 has been fitted to the bearing 13, 14, the needle roller and cage assembly 15 can also be guided in the axial direction by the end faces 26.
[0046] Alternatively, it may be provided that the running surface 22 of the bearing 13, 14 extends over a circumferential angle of less than 180?. In addition, in this embodiment it may be provided that at least one support surface is provided opposite the running surface 22, which is located on the same periphery as the running surface 22 of the same bearing 13, 14. Depressions 24 can also be formed on one or both sides between the support surface and the bearing surface 22. An analogous assembly of the needle roller and cage assembly 15 as shown in