Apparatus for the analysis of the behavior of a pneumatic tire at the interface with the ground
11506573 · 2022-11-22
Assignee
Inventors
Cpc classification
International classification
Abstract
The present application refers to an apparatus for the analysis of real data relating to the interface region between a pneumatic tire and the road surface under wet conditions. In particular, such an apparatus makes it possible to detect the ground contact region and the water expulsion profile of a pneumatic tire, particularly on wet surfaces, under differing dynamic driving conditions (rolling, braking, and steering of the pneumatic tire).
Claims
1. An apparatus for the analysis of dynamic behavior of a pneumatic tire within an interface region with the ground, the apparatus including: a support frame; a multilayer detection plate carried by said support frame, the multilayer detection plate comprising: an interface layer which, in use, comes into contact with the pneumatic tire in motion, the interface layer being at least partially transparent and having a roughness (Ra) of greater than or equal to 16 micrometers at least at the interface region, the interface layer having greater transparency under wet conditions than under dry conditions; and a base layer coupled to said interface layer such that the interface layer is positioned between the base layer and the pneumatic tire as the pneumatic tire contacts the interface region, the base layer being at least partially transparent; and an image detection device arranged in such a manner as to be able to frame and directly or indirectly capture the base layer of the multilayer detection plate.
2. The apparatus of claim 1, wherein the roughness (Ra) of said interface layer is between 16 micrometers and 160 micrometers, inclusive.
3. The apparatus of claim 1, wherein the roughness (Ra) of said interface layer is between 32 micrometers and 140 micrometers, inclusive.
4. The apparatus of claim 1, wherein the roughness (Ra) of said interface layer is equal to about 125 micrometers.
5. The apparatus of claim 1, wherein said interface layer has a rough surface finish comprising a plurality of micro-geometric irregularities.
6. The apparatus of claim 1, wherein the image detection device is a high-speed camera.
7. The apparatus of claim 1, further comprising a lighting element suitable for directly illuminating the base layer of the multilayer detection plate.
8. The apparatus of claim 1, further comprising a layer of water upon the multilayer detection plate in contact with the interface layer.
Description
(1) The advantages, as well as the characteristics and usage methods of the present disclosure, will become clear from the following detailed description of preferred embodiments thereof, given purely by way of non-limiting examples, making reference to the accompanying FIGURES, wherein;
(2)
(3) Other advantages, characteristics and the usage methods for the present disclosure, will become clear from the following detailed description of some embodiments, given purely by way of non-limiting examples.
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(4) Various embodiments and variations of the apparatus will now be described, and this with reference to the FIGURES introduced above.
(5) The present disclosure refers to an apparatus for the analysis of the behavior of a pneumatic tire at the interface region between a pneumatic tire and the road surface, under differing dynamic driving conditions (for example, rolling, steering, braking and/or combinations thereof), and under different surface conditions, in particular when wet.
(6) With specific reference to
(7) The detection plate 2 and the support frame 3 together form a substantially box-shaped hollow structure.
(8) Preferably, when the apparatus is in use, the detection plate 2 is located at the level of the road surface 200 while the support frame 3 is at least partially below ground. In particular, the detection plate 2 is surrounded and supported along the perimeter thereof by four side walls (e.g., a first sidewall 31, a second sidewall 32, etc.) of the support frame 3, positioned perpendicularly with respect thereto.
(9) Thus, the box-like structure is closed by a bottom wall 35, parallel to the detection plate 2.
(10) The detection plate 2 is multi-layered, i.e., it consists of at least two different layers overlapping one another.
(11) A first layer of the multilayer detection plate is represented by the interface layer 4 which, in use, comes into contact with the pneumatic tire 100 in motion. In order test the behavior of the pneumatic tire on wet surfaces, the interface layer 4 can be covered with water.
(12) This interface layer 4 consists of a material that is preferably plastic and rough, i.e., that has, on one of the surfaces thereof, micro-geometric irregularities such as grooves, wrinkles, ripples or granularity, at least at the interface with the pneumatic tire 100, in such a way as to promote the adherence of the latter to the interface layer 4.
(13) Preferably, the roughness Ra of the interface layer is between 16 μm (micrometers) and 160 μm (micrometers). More preferably, the roughness Ra is between 32 μm (micrometers) and 140 μm (micrometers), even more preferably approximately equal to 125 μm (micrometers).
(14) The interface layer 4 is at least partially transparent, preferably optically transparent, i.e., it allows most of the light that strikes it to be transmitted through it without being reflected.
(15) The transparency of the interface layer 4 is greater when in contact with water than under dry conditions, i.e., under wet conditions it allows more of the light that strikes it to be transmitted through it without being reflected than under dry conditions.
(16) The characteristic is particularly advantageous for the analysis of the behavior of a pneumatic tire 100 at the interface region between a pneumatic tire and the road surface, under differing dynamic driving conditions (for example, rolling, steering, braking and/or combinations thereof), in particular when wet.
(17) The roughness range Ra of the interface layer 4 between 16 μm (micrometers) and 160 μm (micrometers) represents a window of best compromise between a roughness that is too low (under 16 μm (micrometers)), which would favor the transparency of the interface layer 4 but which would compromise the improved characteristics of adhesion with the pneumatic tire 100, and a roughness that is too high (above 160 μm (micrometers)), which would increase the improved characteristics of adhesion with the pneumatic tire 100 but which would reduce the transparency of the interface layer 4.
(18) The surface having the roughness Ra is preferably obtained by means of molding.
(19) The multilayer detection plate 2 further comprises a base layer 5. This layer 5 is directly coupled to the interface layer 4.
(20) For the purposes of this coupling the interface layer 4 preferably has a smooth adhesive lower surface in direct contact with the base layer 5. This smooth lower surface is located on the opposite side of the surface having the roughness Ra of the interface layer 4.
(21) The base layer 5 is made from a material that is at least partially transparent, preferably optically transparent, in such a way that most of the light that hits it can pass through it without being reflected. For example, the base layer 5 can be made of glass or plexiglas.
(22) In a preferred embodiment the apparatus (1) further comprises a layer of water upon the multilayer detection floor (2) in contact with the interface layer (4), This layer of water is preferably less than 10 mm (millimeters), more preferably less than 7 mm (millimeters), even more preferably equal to about 2 mm (millimeters).
(23) The base layer 5 can advantageously be directly illuminated by at least one lighting element 7 positioned on the support frame 3. Preferably, in order to ensure uniform illumination, a plurality of lighting elements 7 is applied to the side walls (e.g., the first sidewall 31, the second sidewall 32, etc.) of the support frame 3.
(24) Alternatively, or in addition, some of the lighting elements 7 can be applied to the bottom wall 35 of the support frame 3.
(25) The apparatus may further comprise an image detection device 9 arranged in such a manner as to be able to frame and capture the base layer 5 directly (or indirectly by means of an appropriately placed mirror). Preferably, the image detection device 9 rests on the bottom wall 35 of the support frame 3, or is inserted within said wall, with the lens thereof pointing towards the base layer 5.
(26) Furthermore, the image detection device 9 is preferably a high-speed camera.
(27) By virtue of the illumination and transparency of the base layer 5 and the interface layer 4, the image detection device 9 can clearly acquire a sequence of images of the pneumatic tire interface region 100 during the passage thereof upon the interface layer 4 of the detection plate.
(28) The apparatus has heretofore been described with reference to preferred embodiments. It is to be understood that there may exist other embodiments that relate to the same inventive nucleus, as defined by the scope of protection of the claims set out below.