Measuring rim for measuring the brake abrasion of a wheel brake
12054004 ยท 2024-08-06
Assignee
Inventors
Cpc classification
F16D2066/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D66/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60B21/12
PERFORMING OPERATIONS; TRANSPORTING
B60B21/02
PERFORMING OPERATIONS; TRANSPORTING
F16D65/0031
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T17/22
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60B21/12
PERFORMING OPERATIONS; TRANSPORTING
B60B21/02
PERFORMING OPERATIONS; TRANSPORTING
F16D65/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D66/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Various embodiments of the present disclosure are directed to measuring rims and methods for measuring a brake abrasion of a wheel brake having a measuring rim. In one embodiment, consistent with the present disclosure, a measuring rim is disclosed including a circumferential tire support surface connected on one side to an end wall and on an opposite side to a seal to form an outwardly closed inner space, and a rotary feed-through provided on a central region of the end wall, the rotary feed-through configured to supply a gaseous medium to the inner space of the measuring rim and remove it therefrom.
Claims
1. Measuring rim comprising: a circumferential tire support surface connected on one side to an end wall and on an opposite side to a seal to form an outwardly closed inner space, and a rotary feed-through provided on a central region of the end wall, the rotary feed-through configured to supply a gaseous medium to the inner space of the measuring rim and remove it therefrom.
2. The measuring rim according to claim 1, characterized in that the end wall is conical, tapering in the direction of the central region.
3. The measuring rim according to claim 1, characterized in that a rim wall of the measuring rim is a hollow wall to form a first flow channel which extends from the rotary feed-through into the inner space of the measuring rim.
4. The measuring rim according to claim 1, characterized in that a rim wall of the measuring rim is designed as a double hollow wall to form a first flow channel and a second flow channel, and the first flow channel and the second flow channel each extend from the rotary feed-through into the inner space of the measuring rim.
5. The measuring rim according to claim 3, characterized in that the first flow channel opens into the inner space of the measuring rim in the region of the seal.
6. The measuring rim according to claim 5, further including a deflection plate which extends at least partly over the circumference and is positioned is provided in the region of the seal.
7. The measuring rim according to claim 4, characterized in that the second flow channel includes an inner wall which is adjacent to the inner space of the measuring rim and which is at least partly perforated.
8. The measuring rim according to claim 1, further including a temperature sensor on the measuring rim.
9. Measuring arrangement for measuring the brake abrasion of a wheel brake, the measuring arrangement comprising: the measuring rim according to claim 1, wherein the measuring rim is attached to a wheel shaft, the wheel shaft configured to be braked by means of the wheel brake, wherein the seal is arranged on the brake side, wherein the rotary feed-through is connected to a supply line and configured to supply the gaseous medium to the measuring rim, and the rotary feed-through is further connected to a removal line configured to remove gaseous medium laden with brake abrasion particles, and an extraction device is arranged in the removal line and configured to divert gaseous medium from the removal line and to supply said medium to a measuring device, and the measuring device configured to measure a property of the brake abrasion.
10. The measuring arrangement according to claim 9, characterized in that a measured quantity (M) measured using the measuring device is corrected by a correction factor which is dependent on the temperature (T) of the measuring rim or the temperature (T) of a part of the wheel brake.
11. Method for measuring the brake abrasion of a wheel brake having a measuring rim having an outwardly closed inner space, the method including the following steps: attaching the measuring rim to a wheel shaft which can be braked by means of the wheel brake, supplying gaseous medium into the inner space of the measuring rim via a rotary feed-through of the measuring rim by means of a supply line, removing gaseous medium laden with brake abrasion particles via the rotary feed-through by means of a removal line, diverting gaseous medium from the removal line by means of an extraction device downstream of the rotary feed-through and supplied to a measuring device, and measuring a property of the brake abrasion with the measuring devices based upon the diverted gaseous medium supplied.
12. The method according to claim 11, characterized in that a measured quantity (M) measured using the measuring device is corrected by a correction factor which is dependent on the temperature (T) of the measuring rim or the temperature (T) of a part of the wheel brake.
13. The measuring rim according to claim 9, characterized in that the end wall is conical, tapering in the direction of the central region.
14. The measuring rim according to claim 9, characterized in that a rim wall of the measuring rim is a hollow wall to form a first flow channel which extends from the rotary feed-through into the inner space of the measuring rim.
15. The measuring rim according to claim 9, characterized in that a rim wall of the measuring rim is a double hollow wall to form a first flow channel and a second flow channel, and the first flow channel and the second flow channel each extend from the rotary feed-through into the inner space of the measuring rim.
16. The measuring rim according to claim 14, characterized in that the first flow channel opens into the inner space of the measuring rim in the region of the seal.
17. The measuring rim according to claim 16, further including a deflection plate which extends at least partly over the circumference and is positioned in the region of the seal.
18. The measuring rim according to claim 15, characterized in that the second flow channel includes an inner wall which is adjacent to the inner space of the measuring rim and which is at least partly perforated.
19. The measuring rim according to claim 15, characterized in that the first flow channel opens into the inner space of the measuring rim in the region of the seal.
20. The measuring rim according to claim 4, characterized in that the first flow channel opens into the inner space of the measuring rim in the region of the seal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In the following, the present invention is described in greater detail with reference to
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION
(8)
(9) The wheel shaft 3 can be braked by means of a wheel brake 6 if necessary. For this purpose, a rotating brake part 7 of a wheel brake, for example a brake disk of a disk brake (as shown in
(10) In contrast to a conventional wheel rim, the measuring rim 1 is closed on the axially outer end face, i.e., facing away from the wheel brake 6, for example by means of an end wall 11. The end wall 11 is preferably designed to be conical, tapering axially outwardly (as shown in
(11) A rotary feed-through 13 is arranged in the central region of the axially outer end wall 11. Such rotary feed-throughs 13 are well known and have a rotating part 14 which is connected to the end wall 11 of the measuring rim 1 that rotates during operation, for example by means of bolts distributed over the circumference. The rotating part 14 is connected to a stationary part 15 of the rotary feed-through 13. The rotary feed-through 13 forms flow channels in order to be able to transfer a medium from a stationary part (here media lines 16, 17) to a rotating part (here the measuring rim 1). A gaseous medium can be supplied to the measuring rim 1 via a supply line 16, for example a tube, and a gaseous medium can be removed from the measuring rim 1 via a removal line 17, for example a tube. The medium supplied is a particle-free gas, for example air, and the medium removed is a particle-laden gas, for example air laden with brake abrasion.
(12) A possible measurement set-up is shown in
(13) In an advantageous configuration of the measuring rim 1 according to
(14) In the region of the seal 12, i.e., at the brake-side axial end of the measuring rim 1, a deflection plate 32 can also be provided at least partly over the circumference in order to deflect the flow of the gaseous medium in a targeted manner from the axial direction into the radial direction. The flow is preferably deflected in such a way that it flows radially inwardly along the seal 12, i.e., between the seal 12 and the wheel brake 6. This can also help to avoid the formation of a dead volume behind the wheel brake 6.
(15) In the embodiment according to
(16) Flow guide elements 33 can also be arranged in the inner space of the measuring rim 1 in order to guide in a targeted manner and/or to improve the flow of both the supplied gaseous medium and the removed gaseous medium which forms in the inner space. Such flow guide elements 33 can be arranged on the end wall 11, the seal 12 and/or in the region of the tire support surface 18. The spokes 19 of the measuring rim 1 can also be used for influencing the flow and flow conditions in the inner space of the measuring rim 1 in a targeted manner.
(17) In the embodiment according to
(18) In the embodiment according to
(19) In a further advantageous embodiment, the rim wall is at least partly designed as a double hollow wall in order to form a first flow channel 35 (as in
(20) The temperature at the wheel brake 6 influences the particle emission in a known manner, and it applies here that higher temperatures usually lead to an increase in the emission of the number of particles. However, this does not necessarily have to also apply to the particle mass since brake abrasion particles are normally smaller at higher temperatures. Therefore, for the measurement of the particle emission, a temperature at the wheel brake 6 that is as unadulterated as possible compared to real use is advantageous during the measurement. Each type of housing of the wheel brake 6 naturally influences the flow conditions around the wheel brake 6 and as a result also the temperature. However, the housing is important for the measuring rim 1 according to the invention in order to be able to make a reasonable measurement at all. To mitigate this potential contradiction, a temperature measurement can be integrated into the measuring rim 1 at a suitable point, preferably in the region of the wheel brake 6, for example by arranging a suitable temperature sensor 27 as shown in
(21) Furthermore, it is also possible to keep the temperature difference between the measuring rim 1 and the unmodified vehicle rim to zero, for example by controlling the flow of the gaseous medium supplied to the measuring rim 1 in a targeted manner, as a result of which the removal of heat from the measuring rim 1 can also be influenced by the supplied gaseous medium and the removed gaseous medium. This would have the advantage that any differences in temperature do not have to be corrected afterwards.