Additional weight for a wheel
09752647 · 2017-09-05
Assignee
Inventors
Cpc classification
F16F2230/0011
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62D49/0621
PERFORMING OPERATIONS; TRANSPORTING
F16F15/322
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/324
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60B15/28
PERFORMING OPERATIONS; TRANSPORTING
International classification
F16F15/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An additional weight for a wheel for ballasting a drive axle of a working machine includes a first loading disk centrally connected to the drive axle and a second loading disk connected to the first loading disk. The first loading disk has a conical abutment face for pre-positioning the second loading disk relative to the first loading disk. The first and the second loading disks form encoding formations for mutually centering on end faces which face each other and which are in engagement with each other in a connected state of the loading disks. At least one of the end faces of at least one of the loading disks forms a spacer dome. In the connected state, the spacer dome contacts an end face of the other loading disk in order to position the first and the second loading disks with respect to each other in an axial direction.
Claims
1. An additional weight for a wheel for ballasting a drive axle of an agricultural working machine, comprising: a first loading disk centrally connected to the drive axle, where the drive axle acts as an adapter element; and at least one second loading disk connected to the first loading disk; wherein, the first loading disk has a conical abutment face for pre-positioning the second loading disk relative to the first loading disk; and wherein, the first and the second loading disks form encoding formations for mutually centering on end faces which face each other and which are in engagement with each other in a connected state of the loading disks, and the encoding formations in the end faces form a triangular shape; wherein, at least one of the end faces of at least one of the loading disks forms a spacer dome, where in the connected state the spacer dome contacts an end face of the other loading disk in order to position the first and the second loading disks with respect to each other in an axial direction.
2. The additional weight of claim 1, wherein the first and second loading disks form on at least one of the end faces spacer domes via which the loading disks contact each other in the connected state.
3. The additional weight of claim 1, wherein the encoding formations are constructed partially as recesses and partially as protrusions.
4. The additional weight of claim 1, wherein a through-hole extends through the spacer domes.
5. The additional weight of claim 1, wherein the first loading disk has a securing hole circle for securing to a wheel flange of the drive axle.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above-mentioned aspects of the present disclosure and the manner of obtaining them will become more apparent and the disclosure itself will be better understood by reference to the following description of the embodiments of the disclosure, taken in conjunction with the accompanying drawings, wherein:
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DETAILED DESCRIPTION
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(13) A second loading disk 14.sub.1 is secured centrally to the first loading disk 12 and a third loading disk 14.sub.2 is secured to the second loading disk 14.sub.1. In this instance, the first loading disk 12 acts as an adapter disk of the additional weight 10 for a wheel with respect to the wheel 34. The second loading disk 14.sub.1 and the third loading disk 14.sub.2 may be constructed substantially similar, as is the case in this instance. For the purposes of this disclosure, it is assumed that in the assembled state a rear side of the first loading disk 12 is directed counter to the wheel disk 38 and a front side of the first loading disk 14 is directed counter to a rear side of the second loading disk 14.sub.1 so that in turn a front side of the second loading disk 14.sub.1 is directed counter to a rear side of the third loading disk 14.sub.2. Provision may be made for the assembly of other loading disks 14 but is not illustrated.
(14) While the positioning and centering of the first loading disk 12 with respect to the wheel securing flange 44 is carried out as described above by means of the wheel nuts 48 and the securing hole circles 46, 50, the mutual positioning and centering of the loading disks 12, 14 is initially carried out via the cooperation of conical abutment faces 16 for a pre-positioning during assembly, subsequently by means of encoding formations 22 for the positioning in a radial direction or centering and finally by means of spacer domes 24 for the positioning in an axial direction.
(15) In order to pre-position in a radial direction when the second loading disk 14.sub.1 is assembled with respect to the first loading disk 12 and during the subsequent assembly of the third loading disk 14.sub.2 with respect to the second loading disk 14.sub.1, the loading disk 12 has at the front side (
(16) For positioning in a radial direction or centering during assembly of the loading disks 12, 14.sub.1, 14.sub.2, the loading disk 12 has at the end face 18 of the front side (
(17) For positioning in an axial direction when the loading disks 12, 14.sub.1, 14.sub.2 are assembled, the loading disks 14.sub.1, 14.sub.2 have spacer domes 24 on the end face 18 of the front side. In this embodiment, three spacer domes 24 are provided on the front sides of the loading disks 12, 14.sub.1, 14.sub.2. The spacer domes 24 include tapering or conical protrusions beyond the end face 18. Through-holes 64 extend through the spacer domes 24 in an axial direction. A threaded portion 66 is formed in the through-holes 64.
(18) As a counter-piece with respect to the spacer domes 24, the loading disks 14.sub.1, 14.sub.2 have at the respective rear side (
(19) In the assembled state of the loading disks 12, 14, an abutment face 60 of the spacer domes 24 moves into abutment with a base face 62 of the first recesses 58 so that a clear positioning of the two loading disks 12, 14 with respect to each other in an axial direction is thereby carried out. In
(20) While embodiments incorporating the principles of the present disclosure have been described hereinabove, the present disclosure is not limited to the described embodiments. Instead, this application is intended to cover any variations, uses, or adaptations of the disclosure using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this disclosure pertains and which fall within the limits of the appended claims.