NOISE REDUCING TYRE
20200331306 ยท 2020-10-22
Inventors
Cpc classification
B60C19/002
PERFORMING OPERATIONS; TRANSPORTING
B60B21/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A pneumatic tyre comprising an inner surface of the tyre, wherein a sound absorbing device component is connected to the inner surface of the tyre. The sound absorbing device component comprises a panel with a plurality of perforations and two sidewall sections, the sidewall sections being distinct from the panel, wherein the sidewall sections are connected to the inner surface of the tyre and arranged opposite of each other and wherein the panel is borne by the sidewall sections, thereby positioning the panel at a distance from the inner surface of the tyre and defining an inner volume enclosed by the panel, the sidewall sections and the inner surface. Furthermore, 95 area-% of all perforations which permit access to the inner volume are located on the panel.
Claims
1. A pneumatic tyre comprising an inner surface of the tyre, wherein a sound absorbing device component is connected to the inner surface of the tyre, wherein the sound absorbing device component comprises a panel with a plurality of perforations and two sidewall sections, the sidewall sections being distinct from the panel, wherein the sidewall sections are connected to the inner surface of the tyre and arranged opposite of each other, wherein the panel is borne at least by the sidewall sections, thereby positioning the panel at a distance from the inner surface of the tyre and defining an inner volume enclosed by the panel, the sidewall sections and the inner surface and wherein 95 area-% of all perforations which permit access to the inner volume are located on the panel.
2. The tyre according to claim 1, wherein the sidewalls do not comprise perforations to the inner volume of the sound absorbing device component.
3. The tyre according to claim 1, wherein the inner volume is void.
4. The tyre according to claim 1, wherein the inner volume comprises a polymeric foam.
5. The tyre according to claim 4, wherein the foam is an open-cell foam.
6. The tyre according to claim 1, wherein the panel comprises an elastomer and/or a metal.
7. The tyre according to claim 1, wherein the panel has a perforation ratio of 0.05% to 30%.
8. The tyre according to claim 1, wherein the perforations in the panel have a diameter of 0.5 mm to 20 mm.
9. The tyre according to claim 1, wherein the sound absorbing device component extends along the entire inner circumference of the tyre.
10. The tyre according to claim 1, wherein a plurality of the sound absorbing device components are present and each sound absorbing device component extends along 10% to 25% of the entire inner circumference of the tyre.
11. A wheel assembly comprising a pneumatic tyre assembled onto a wheel, the pneumatic tyre comprising an inner surface of the tyre and the wheel comprising an inner surface of the wheel, wherein the tyre is a tyre according to claim 1 and/or that a sound absorbing device component is connected to the inner surface of the wheel, wherein the sound absorbing device component comprises a panel with a plurality of perforations and two sidewall sections, wherein the sidewall sections are connected to the inner surface of the wheel and arranged opposite of each other, wherein the panel is borne by the sidewall sections, thereby positioning the panel at a distance from the inner surface of the wheel and defining an inner volume enclosed by the panel, the sidewall sections and the inner surface and wherein 95 area-% of all perforations which permit access to the inner volume are located on the panel.
12. The wheel assembly according to claim 11, wherein the sidewalls do not comprise perforations to the inner volume of the sound absorbing device component.
13. The wheel assembly according to claim 11, wherein the inner volume comprises an open-cell polymeric foam.
14. The wheel assembly according to claim 11, wherein the sound absorbing device component extends along the entire inner circumference of the tyre.
15. A method of reducing noise emissions from a wheel assembly comprising a pneumatic tyre assembled onto a wheel, the pneumatic tyre comprising an inner surface of the tyre and the wheel comprising an inner surface of the wheel, wherein a sound absorbing device component is connected to the inner surface of the tyre and/or a sound absorbing device component is connected to the inner surface of the wheel, wherein the sound absorbing device component comprises a panel with a plurality of perforations and two sidewall sections, wherein the sidewall sections are connected to the inner surface or the tyre or the inner surface of the wheel, respectively and are arranged opposite of each other, wherein the panel is borne by the sidewall sections, thereby positioning the panel at a distance from the inner surface and defining an inner volume enclosed by the panel, the sidewall sections and the inner surface and wherein 95 area-% of all perforations which permit access to the inner volume are located on the panel.
Description
[0023]
[0024]
[0025]
[0026]
[0027]
[0028] The pneumatic tyre 10 comprises an inner surface 11 of the tyre to which a sound absorbing device component 40 is attached. While the position of the sound absorbing device component 40 as shown in
[0029] The sound absorbing device component 40 comprises a panel 80 with a plurality of perforations 90 and two sidewall sections 60, 70. The sidewall sections 60, 70 are distinct from the panel 80: here, the sidewall sections 60, 70 are non-perforated, thereby forming a barrier between to inside 30 of the tyre 10. In general, the sidewall sections 60, 70 being distinct form the panel 80 is to be understood that they differ in at least one property, for example material, structure, geometrical dimensions, etc. from the panel.
[0030] As can be seen, the sidewall sections 60, 70 are connected to the inner surface 11 of the tyre 10 and are arranged opposite of each other. The panel 80 is borne by the sidewall sections 60, 70, thereby positioning the panel 80 at a distance from the inner surface 11 of the tyre 10 and defining an inner volume 50 enclosed by the panel 80, the sidewall sections 60, 70 and the inner surface 11.
[0031] The distance between opposing faces of the sidewall sections 60, 70 may, for example, be in a range of 10 mm to 160 mm, preferably 30 mm to 120 mm and more preferred 50 mm to 100 mm. It is preferred that the distance between opposing faces of the sidewall sections 60, 70 is as constant as possible, for example not deviating by more than 10%, preferably not more than 5% and more preferred by not more than 2% from the average distance.
[0032] The distance between the inner surface 11 of the tyre 10 and the panel 80 may, for example, be in a range of 10 mm to 100 mm, preferably 20 mm to 70 mm and more preferred 30 mm to 60 mm. It is preferred that the distance between the inner surface 11 of the tyre 10 and the panel 80 is as constant as possible, for example not deviating by more than 10%, preferably not more than 5% and more preferred by not more than 2% from the average distance.
[0033] In one embodiment of the tyre, also shown in
[0034] In another embodiment of the tyre, also shown in
[0035] In another embodiment of the tyre, shown in
[0036] In another embodiment of the tyre the panel 80 comprises an elastomer and/or a metal. Suitable elastomers include natural rubbers, synthetic rubbers and polyurethane elastomers such as TPU and TPE. Suitable metals include aluminium, steel and copper.
[0037] In another embodiment of the tyre the panel 80 has a perforation ratio of 0.05% to 30% The perforation ratio is defined as ratio of area occupied by perforations to the total area, including perforations, of the panel. Preferably the perforation ratio is 0.1% to 1%, more preferred 0.1% to 0.3%.
[0038] In another embodiment of the tyre the perforations 90 in the panel 80 have a diameter of 0.5 mm to 20 mm preferably the diameter is 0.7 mm to 2 mm, more preferred 0.5 mm to 1.5 mm.
[0039]
[0040] Furthermore, as the sound absorbing device component 40 extends along the entire inner circumference of the tyre, there are no perforations extending in circumferential direction to permit access to the inner volume 50 from the inside 30 of the tyre 10. If the the sidewalls (
[0041]
[0042] The individual sound absorbing device components 40-43 are delimited in circumferential direction of the tyre by frontal walls 61-68. If these frontal walls 61-68 do not comprise perforations to the inner volume 50 of the sound absorbing device component 40 then 100 area-% of all perforations 90 (=all perforations 90) which permit access to the inner volume 50 are located on the panel 80. This is a preferred configuration.
[0043]
[0044] Embodiments relating to the sound absorbing device component 40 in the tyre/wheel assembly according to the invention correspond to those in connection with the tyre as outlined above:
[0045] In one embodiment of the tyre/wheel assembly, in the sound absorbing device component 40 the sidewalls 60, 70 do not comprise perforations to the inner volume 50 of the sound absorbing device component. Then the only fluidic communication between the inside 30 of the tyre 10 and the inner volume 50 of the sound absorbing device component 40 is via the perforations 90 of the panel 80.
[0046] In another embodiment of the tyre/wheel assembly, in the sound absorbing device component 40 the inner volume 50 is void. Since fluidic communication between the inside 30 of the tyre 10 and the inner volume 50 of the sound absorbing device component 40 occurs via the perforations 90 of the panel 80, these volumes share the same contents. In most cases this will be the compressed air used to inflate the tyre.
[0047] In another embodiment of the tyre/wheel assembly, in the sound absorbing device component 40 the inner volume 50 comprises a polymeric foam 51. Examples for suitable foams include flexible polyurethane foams, rigid polyurethane foams and mechanically frothed latex foams. Preferably the foam 51 is an open-cell foam.
[0048] In another embodiment of the tyre/wheel assembly, in the sound absorbing device component 40 the panel 80 comprises an elastomer and/or a metal. Suitable elastomers include natural rubbers, synthetic rubbers and polyurethane elastomers such as TPU and TPE. Suitable metals include aluminium, steel and copper.
[0049] In another embodiment of the tyre/wheel assembly, in the sound absorbing device component 40 the panel 80 has a perforation ratio of 0.05% to 30% The perforation ratio is defined as ratio of area occupied by perforations to the total area, including perforations, of the panel. Preferably the perforation ratio is 0.1% to 1%, more preferred 0.1% to 0.3%.
[0050] In another embodiment of the tyre/wheel assembly, in the sound absorbing device component 40 the perforations 90 in the panel 80 have a diameter of 0.5 mm to 20 mm preferably the diameter is 0.7 mm to 2 mm, more preferred 0.7 mm to 1.5 mm.
[0051] In another embodiment of the tyre/wheel assembly, the sound absorbing device component 40 extends along the entire inner circumference of the wheel 20.
[0052] In another embodiment of the tyre/wheel assembly a plurality of the sound absorbing device components 40, 41, 42, 43 is present and each sound absorbing device component 40, 41, 42, 43 extends along 10% to 25% of the entire inner circumference of the wheel 20. Preferably, this extension is 12.5% to 20%. Regarding the number of individual sound absorbing device components, it is preferred that the tyre comprises 2, 3, 4, 5, 6, 7, 8, 9 or 10 individual sound absorbing device components.
Examples
I. Impedance Tube Testing
[0053] Several sound absorbing devices were tested in an impedance tube. The impedance tube was developed to measure dissipation losses of a sample inside the tube. At the front of the tube a speaker was placed which generates propagating sound waves in a frequency sweep. In the middle part of the tube a sample can be placed. Finally, the amount of sound energy dissipation has been determined by measuring the sound energy of the sound wave before and after a sample.
[0054] Four samples were tested (MPP: multi-perforated panel):
1. Only foam (comparative example)
2. MPP (diameter holes of 1.4 mm, perforation ratio of 0.26%, thickness of aluminium perforated plate: 2 mm) supported on two sides with wooden blocks (50 mm height, comparative example: open compartment)
3. The same MPP as in sample 2, now supported by a wooden box of 50 mm height, the MPP forming the top face of the wooden box (inventive example: closed compartment)
4. The same MPP as in sample 3, however the wooden box was filled with an open-cell polyurethane flexible foam having a density of 57 kg/m.sup.3 (inventive example: closed compartment and foam backing)
[0055] The results are depicted in
II. Tyre Prototype Testing
[0056] Prototypes of tyres equipped with sound absorbing devices were compared to a reference tyre. Prototypes with MPP-type sound absorbing devices were applied to the inner-liner of a 245/45R18 Vredestein Ultrac Vorti tyre. These tyres were tested on a test machine with a rotating drum. Both a coast-down of 145-20 km/h and three constant speed measurements (120, 80 and 60 km/h) were carried out. Vibrations were measured at the hub with an accelerometer.
[0057] Results at constant speeds of 60 and 120 km/h were used for comparison purposes, as at these speeds skew orders are amplified by the backward or forward traveling wave of the first cavity resonance mode as depicted for 120 km/h in
TABLE-US-00001 Panel properties No. of Relative Hole Perforation Compartment properties Sidewall sound length of Diameter ratio Thickness Height Density section absorbing device Avg. Example d (mm) p (%) h (mm) Material (mm) (kg/m.sup.3) Material material devices (%) RMS C1 0 C2 50 20 PU 4 12.5% 1.2 I1 1.4 0.26 1 BR 50 20 PU RS 4 12.5% 0.1 I2 1.4 0.26 1 BR 50 20 PU CC 4 12.5% 0.7 I3 2 0.16 2 BR 30 20 PU PU 4 12.5% 2.1 I4 1.4 0.26 1 BR 30 20 PU RS 4 12.5% 2.2 I5 2 0.16 1 P 50 20 PU RS 4 12.5% 2.8 I6 1.4 0.26 2 BR 50 20 PU RS 4 12.5% 3.1 I7 15 28 2 BR 30 20 PU RS 4 12.5% 3.3 I8 1 0.16 2 P 30 20 PU RS 4 12.5% 5.1 I9 1 0.16 1 BR 30 20 PU RS 1 100% 7.2 I10 1.4 0.26 1 BR 50 1.2* air CC 4 12.5% 0.5 Panel material: BR = butyl rubber; P = polyurethane elastomer Compartment material: PU = open-cell polyurethane flexible foam having a density of 57 kg/m.sup.3 Sidewall section material: RS = rubber seal; CC = closed cell foam *I10 contains an air instead of foam The negative RMS values demonstrate the sound absorbing effect of the devices according to the invention.