PNEUMATIC TIRE WITHOUT INNER TUBE AND UNSUPPORTED BY SIDEWALL
20210387485 · 2021-12-16
Inventors
Cpc classification
B60C17/00
PERFORMING OPERATIONS; TRANSPORTING
B60C2017/0081
PERFORMING OPERATIONS; TRANSPORTING
B60C17/103
PERFORMING OPERATIONS; TRANSPORTING
B60C17/08
PERFORMING OPERATIONS; TRANSPORTING
B60C5/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Disclosed is a pneumatic tire without inner tube and unsupported by sidewall, wherein a wear-resistant layer or a wear-resistant lubrication layer is disposed at an inner surface rubber layer of a tire outer side, or disposed at an inner surface rubber layer of the tire outer side and a tire inner side. The wear-resistant layer is located at at least one of the following three portions: a tire bead, a tire sidewall, and a tire shoulder. After the tire, which is zero-pressure tire, goes flat, two surfaces of the inner surface rubber layer come into contact with each other, wherein the wear-resistant layer provided at the contact position can improve wear resistance and increase tire mileage and speed limitations.
Claims
1. A pneumatic tire without inner tube and unsupported by sidewall, wherein a wear-resistant layer is disposed at a tire inner surface rubber layer of a tire outer side, or disposed at a tire inner surface rubber layer of the tire outer side and a tire inner side, and the wear-resistant layer is located at at least one of the following three portions: a tire bead, a tire sidewall, and a tire shoulder.
2. The pneumatic tire without inner tube and unsupported by sidewall according to claim 1, wherein the wear-resistant layer at the tire inner surface rubber layer is at least one of a wear-resistant fabric layer, a wear-resistant paper layer, a wear-resistant film layer, a wear-resistant leather layer, and a wear-resistant coating layer.
3. The pneumatic tire without inner tube and unsupported by sidewall according to claim 1, wherein the tire inner surface rubber layer is an airtight layer, and the wear-resistant layer is a wear-resistant rubber layer having wear resistance greater than that of the airtight layer.
4. The pneumatic tire without inner tube and unsupported by sidewall according to claim 2, wherein a thickness of the wear-resistant layer is less than 2 mm.
5. The pneumatic tire without inner tube and unsupported by sidewall according to claim 3, wherein a thickness of the wear-resistant layer is less than 2 mm.
6. The pneumatic tire without inner tube and unsupported by sidewall according to claim 2, wherein bending and deformation resistance of the tire sidewall after the wear-resistant layer is disposed at an inner surface rubber layer of the tire sidewall is one to two times the bending and deformation resistance of the tire sidewall before the wear-resistant layer is disposed.
7. The pneumatic tire without inner tube and unsupported by sidewall according to claim 3, wherein bending and deformation resistance of the tire sidewall after the wear-resistant layer is disposed at an inner surface rubber layer of the tire sidewall is one to two times the bending and deformation resistance of the tire sidewall before the wear-resistant layer is disposed.
8. The pneumatic tire without inner tube and unsupported by sidewall according to claim 2, wherein in a case that an inner surface of the wear-resistant layer has the same roughness, a maximum static friction coefficient of friction between an inner surface of the wear-resistant layer at the tire inner side and the inner surface of the wear-resistant layer is greater than or equal to a maximum static friction coefficient of friction between an inner surface of the wear-resistant layer at the tire outer side and the inner surface of the wear-resistant layer.
9. The pneumatic tire without inner tube and unsupported by sidewall according to claim 3, wherein in a case that an inner surface of the wear-resistant layer has the same roughness, a maximum static friction coefficient of friction between an inner surface of the wear-resistant layer at the tire inner side and the inner surface of the wear-resistant layer is greater than or equal to a maximum static friction coefficient of friction between an inner surface of the wear-resistant layer at the tire outer side and the inner surface of the wear-resistant layer.
10. The pneumatic tire without inner tube and unsupported by sidewall according to claim 2, wherein the wear-resistant layer is a wear-resistant lubrication layer having a lubrication function.
11. The pneumatic tire without inner tube and unsupported by sidewall according to claim 3, wherein the wear-resistant layer is a wear-resistant lubrication layer having a lubrication function.
12. The pneumatic tire without inner tube and unsupported by sidewall according to claim 2, wherein the tire inner surface rubber layer at which the wear-resistant layer is disposed is more wear-resistant than the tire inner surface rubber layer.
13. The pneumatic tire without inner tube and unsupported by sidewall according to claim 2, wherein one of a liquid lubricant, a semisolid lubricant coating layer, and a dry-surface lubrication layer is disposed on inner surfaces of the wear-resistant fabric layer, the wear-resistant paper layer, and the wear-resistant leather layer; and a semisolid lubricant coating layer or a dry-surface lubrication layer is disposed on an inner surface of the wear-resistant film layer.
14. The pneumatic tire without inner tube and unsupported by sidewall according to claim 2, wherein the wear-resistant coating layer is a dry-surface lubrication coating layer or a semisolid lubricant coating layer having a lubrication property.
15. The pneumatic tire without inner tube and unsupported by sidewall according to claim 14, wherein thicknesses of the dry-surface lubrication coating layer and the semisolid lubricant coating layer are less than 1.5 mm.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
REFERENCE NUMERALS
[0042] 10—horizontal ground, 20—tire outer side, and 21—tire inner side; 30—hub, and 31—inner rim; 32—tire bead seat at an inner side of a vehicle body; 33—groove of the hub; 34—tire bead seat at an outer side of the vehicle body; 35—outer rim; 36—rim inner surface; 37—height of the outer rim from the horizontal ground; 38—height of the inner rim from the horizontal ground; and 100—tire bead, 110—inner surface of the tire bead, 120—inner surface of the tire bead at the tire outer side, 123—wear-resistant layer on the inner surface of the tire bead at the tire outer side, 130—inner surface of the tire bead at the tire inner side, 133—wear-resistant layer on the inner surface of the tire bead at the tire inner side, 140—bead apex of a tire, 150—tire lip, 200—tire sidewall, 210—inner surface of the tire sidewall, 220—inner surface of the tire sidewall at the tire outer side, 221—tire bending position at the tire outer side, 222—tire groove structure at the tire outer side, 223—wear-resistant layer on the inner surface of the tire sidewall at the tire outer side, 230—inner surface of the tire sidewall at the tire inner side, 231—tire bending position at the tire inner side, 232—tire groove structure at the tire inner side, 233—wear-resistant layer on the inner surface of the tire sidewall at the tire inner side, 300—tire shoulder, 310—inner side face of the tire shoulder, 320—inner surface of the tire shoulder at the tire outer side, 323—wear-resistant layer on the inner surface of the tire shoulder at the tire outer side, 330—inner surface of the tire shoulder at the tire inner side, 333—wear-resistant layer on the inner surface of the tire shoulder at the tire inner side, 400—tire tread, 410—inner surface of the tire tread, 500—tire inner surface, 510—contact position on the tire inner surface at the tire outer side, and 520—contact position on the tire inner surface at the tire inner side.
[0043] N1—tire ground support force at the outer rim, N2—tire ground support force at the inner rim, N10—support force at the contact position on the tire inner surface at the tire outer side, N20—support force at the contact position on the tire inner surface at the tire inner side, F1—tire ground lateral friction at the outer rim, F2—tire ground lateral friction at the inner rim; F10—lateral friction at a contact position of the tire bead at the tire outer side, F11—pulling force at the tire bending position at the tire outer side, F20—lateral friction at a contact position of the tire bead at the tire inner side, and F21—pushing force at the tire bending position at the tire inner side.
DETAILED DESCRIPTION OF THE EXEMPLARY EMBODIMENTS
[0044] The technical solutions of the present disclosure are further described below with reference to the embodiments and the accompanying drawings.
[0045] As shown in
[0046] A hub shown in
[0047] A bead apex 140 is a main filler of the tire bead 100, produces an effect of supporting a tire wall, and has large bending and deformation resistance and bearing capability. The bead apex 140 has a large thickness at a position close to a tire lip 150 and has large bending and deformation resistance and large bearing capability. The bead apex 140 has a small thickness at a position close to a tire sidewall 200 and has small bending and deformation resistance and small bearing capability. Therefore, the tire bead 100 has large bending and deformation resistance and large bearing capability at the position close to the tire lip 150, and the tire bead 100 has small bending and deformation resistance and small bearing capability at the position close to the tire sidewall 200.
[0048] A tire shoulder 300 has a large thickness at a position close to a tire tread 400 and has large bending and deformation resistance and large bearing capability, and the tire shoulder 300 has a small thickness at the position close to the tire sidewall 200 and has small bending and deformation resistance and small bearing capability.
[0049] Compared with the tire shoulder 300 and the tire bead 100, the tire sidewall 200 has minimum bending and deformation resistance. Therefore, after the tire has zero pressure and goes flat, a bending area of the tire is located at the tire sidewall 200, and the tire tread 400 may bend and deform. The tire inner surface is in contact, and a contact surface at a contact position on the tire inner surface at a side bearing the largest weight of a rim is an inner surface 110 of the tire bead.
[0050] After the tire blows, a tire pressure of the tire is zero. A position that bears a maximum support force in the tire is chosen. Because the tire is in a rolling state, a support force at the position from the horizontal ground 10 is an impulsive force. The support force changes from 0 to the maximum and then changes from the maximum to zero. A cycle is completed every time the position makes one revolution. If the zero-pressure tire is subject to a lateral force, the lateral force at the position also changes from 0 to the maximum, and then changes from the maximum to zero. A cycle is completed every time the position makes one revolution.
[0051] When the tire of the left front wheel blows during a clockwise movement along a curve, after the tire goes flat, the unseating problem of the tire lip at a tire outer side is correlated to a curve radius, a speed, and the mass of a vehicle. A lateral force on the overall vehicle=the mass of the vehicle×the square of the speed/the curve radius. For the same vehicle, when the lateral force on the overall vehicle on a horizontal road surface is larger, a probability of tire bead unseating is larger. Under the same condition, when a height of a cross-section of the tire is larger at a standard pressure is larger, a vehicle body has a larger tilt, the lateral force is larger, and a probability of tire bead unseating is larger.
[0052] The fabric layer in the present disclosure includes a knit fabric layer, a woven fabric layer, a non-woven fabric layer, and a third fabric layer. A fabric is a flat soft sheet formed by interweaving, winding, and connecting small soft long materials. A woven fabric is formed by yarns having an interwoven relationship. A knit fabric is formed by yarns having a wound relationship. A non-woven fabric is formed by yarns having a connection relationship. A third fabric is formed by yarns having an interwoven/wound relationship. The fabric is formed after numerous yarns have a stable relationship. Felt is a fabric.
[0053] The fabric layer in the present disclosure may be a nylon fabric, a non-woven fabric, a flax fabric, an ultra-high-molecular-weight polyethylene fabric, a polytetrafluoroethylene fabric, a capron fabric, a polyamide fabric, a graphite fabric, a carbon fiber fabric, a nylon fabric, and a tetrafluoroethylene fabric having an excellent lubrication property.
[0054] A film layer in the present disclosure is soft, bendable, and deformable, and may be a nylon film or a plastic film.
[0055] The film layer in the present disclosure may be alternatively a polytetrafluoroethylene film, an ultra-high-molecular-weight polyethylene film, a molybdenum disulfide film, or a polyester film. These films have a lubricating property.
[0056] A wear-resistant coating layer is disposed on the tire of the present disclosure inner surface. The dry-surface lubrication coating layer is a dry-surface metal coating layer, a dry-surface coating layer containing a tetrafluoroethylene material, or a dry-surface coating layer containing a molybdenum disulfide material. These coating layers all have a lubricating property. A semisolid lubricant is a polyether lubricating grease, or a silicone lubricating grease. The semisolid lubricant is a molybdenum disulfide lubricating grease or a fluoroether-based lubricating grease.
[0057] The wear-resistant layer in the present disclosure may be alternatively a wear-resistant rubber layer, a wear-resistant polyurethane layer or another high-molecular wear-resistant material layer. They may be used in place of the foregoing wear-resistant film layer. A rubber material of the wear-resistant rubber layer may be butyronitrile rubber with excellent wear resistance performance.
[0058] The wear-resistant layer in the present disclosure and a bump structure may be alternatively disposed on an inner surface of the tire tread.
[0059] A normal tire is used as an example.
[0060] Referring to
[0061] When the camber angle of the flat-tire wheel becomes positive, a height 37 of the outer rim from the horizontal ground is less than a height 38 of the inner rim from the horizontal ground. Therefore, a tire ground support force N1 at the outer rim is greater than a tire ground support force N2 at the inner rim. A support force N10 at a contact position on the tire inner surface at the tire outer side is greater than a support force N20 at a contact position on the tire inner surface at a tire inner side.
[0062] During the clockwise movement along the curve, the tire of the left front wheel blows. A height difference between the height 37 of the outer rim from the horizontal ground and the height 38 of the inner rim from the horizontal ground is greater than a height difference therebetween when the tire of the left front wheel blows during the linear movement at the same vehicle speed. Because the rubber layer on the tire inner surface 500 is a rubber airtight layer. The material of the rubber airtight layer is chlorobutyl rubber or bromobutyl rubber, and has a very large friction coefficient of mutual friction. Therefore, lateral friction F10 at a contact position of the tire bead at the tire outer side is far greater than a pulling force F11 at a tire bending position at the tire outer side. Tire bead unseating at the tire outer side is mainly caused by the lateral friction F10 at the contact position of the tire bead at the tire outer side.
[0063] A contact surface at a contact position 510 on the tire inner surface at the tire outer side is an inner surface 120 of the tire bead at the tire outer side. The contact position 510 on the tire inner surface at the tire outer side is close to the tire lip 150. Because the bead apex 140 of the tire at an outer side at this position has a large thickness and has large bending and deformation resistance and large bearing capability, the lateral friction F10 at the contact position of the tire bead at the tire outer side is rapidly transferred to the tire bead, and a loss is small. When the zero-pressure tire is subject to the relatively large lateral force from the outer side of the vehicle body to the inner side of the vehicle body, the tire lip 150 at the outer side of the vehicle body is unseated from a tire bead seat 34 at the outer side of the vehicle body and slides into a groove 33 of the hub, and braking and steering are out of control to cause a traffic accident.
Embodiment 1
[0064] Refer to
[0065] Alternatively, when the wear-resistant layer 123 on the inner surface of the tire bead at the tire outer side and the wear-resistant layer 133 on the inner surface of the tire bead at the tire inner side are disposed on the inner surface 110 of the tire bead at two sides, a wear-resistant layer 223 on an inner surface of the tire sidewall at the tire outer side and a wear-resistant layer 233 on the inner surface of the tire sidewall at the tire inner side are disposed on an inner surface 210 of the tire sidewall, and a wear-resistant layer 323 on the inner surface of the tire shoulder at the tire outer side and a wear-resistant layer 333 on the inner surface of the tire shoulder at the tire inner side are disposed on an inner side face 310 of the tire shoulder.
[0066] The wear-resistant layer is a wear-resistant lubrication layer, including a silicone lubricating grease, a nylon fabric, and a rubber layer. A thickness of the wear-resistant lubrication layer is 1 mm. A rubber layer of a rubber nylon fabric is first attached to an inner surface of the tire inner surface 500, and vulcanization molding is subsequently performed. The silicone lubricating grease and the nylon fabric have an excellent lubricating property and wear resistance.
[0067] The tire has a normal tire pressure. When the vehicle hits a pit and a curb, the tire is subject to impact. The inner surface 110 of the tire bead of the tire is an impacted surface. The silicone lubricating grease has an adequate lubricating property and is extremely smooth, so that a probability that tire fabrics inside the tire bead 100, the tire sidewall 200, and the tire shoulder 300 are subject to impact and damage to swell can be reduced.
[0068] During the clockwise movement along the curve, the tire of the left front wheel blows and goes flat, the vehicle body tilts, the flat tire is subject to the lateral force from the outer side of the vehicle body to the inner side of the vehicle body, the camber angle of the flat-tire wheel becomes positive, and the position that bears the maximum support force in the tire is chosen. The height 37 of the outer rim from the horizontal ground is less than the height 38 of the inner rim from the horizontal ground. The tire ground support force N1 at the outer rim is greater than the tire ground support force N2 at the inner rim. The support force N10 at the contact position on the tire inner surface at the tire outer side is greater than a support force N20 at the contact position on the tire inner surface at the tire inner side. The lateral friction F10 at the contact position of the tire bead at the tire outer side is greater than lateral friction F20 at a contact position of the tire bead at the tire inner side. Because the tire has a small aspect ratio, the height of the cross-section of the tire is small, the vehicle body tilts slightly, a difference between the tire ground support force N1 at the outer rim and the tire ground support force N2 at the inner rim is small, and a difference between the support force N10 at the contact position on the tire inner surface at the tire outer side and the support force N20 at the contact position on the tire inner surface at the tire inner side is small. A difference between the lateral friction F10 at the contact position of the tire bead at the tire outer side and the lateral friction F20 at the contact position of the tire bead at the tire inner side is small.
[0069] Contact surfaces at the contact position 510 on the tire inner surface at the tire outer side and a contact position 520 on the tire inner surface at the tire inner side are the inner surface 110 of the tire bead. The inner surface 110 of the tire bead has a semisolid silicone lubricating grease, a friction coefficient is small. Both the lateral friction F10 at the contact position of the tire bead at the tire outer side and the lateral friction F20 at the contact position of the tire bead at the tire inner side are relatively small. At the contact position 510 on the tire inner surface at the tire outer side and the contact position 520 on the tire inner surface at the tire inner side, the tire tread 400 slides relative to a hub 30. The pulling force F11 at the tire bending position at the tire outer side and a pushing force F21 at a tire bending position at the tire inner side are relatively large.
[0070] The pulling force F11 at the tire bending position at the tire outer side is applied to a position, close to the tire sidewall 200, of the tire bead 100 at the outer side of the vehicle body through a tire bending position 221 at the tire outer side, the tire bead 100 deforms. In addition, the tire bending position 221 at the tire outer side is subject to a force to bend and deform. A force eventually applied to the tire bead at the outer side of the vehicle body from the pulling force F11 at the tire bending position at the tire outer side is delayed and weakened.
[0071] Because the flat tire is in a rolling state, a lateral force applied to the flat tire changes from 0 to the maximum and then changes from the maximum to zero. A cycle is completed every time the tire makes one revolution. The lateral force applied to the flat tire is an intermittent impulsive force. Because the tire is a tire with a small aspect ratio, the height of the tire sidewall 200 of the tire is small. The tire bending position 221 at the tire outer side and a tire bending position 231 at the tire inner side have small bending portions, and a sliding amount of the tire tread 400 relative to the hub 30 is small, the controllability of the vehicle is slightly affected.
[0072] With such an arrangement: 1. A probability that the tire lip 150 at the outer side of the vehicle body is unseated from the tire bead seat 34 at the outer side of the vehicle body and slides into the groove 33 of the hub is reduced, so that tire bead unseating is reduced and the occurrence of traffic accidents is reduced. 2. Because a friction coefficient between the contact position 520 on the tire inner surface at the tire inner side and the contact position 510 on the tire inner surface at the tire outer side is less than a friction coefficient of a normal tire, rolling resistance of the flat tire is less than that of the normal tire, to prevent an unbalanced exertion of force at two sides of the wheel, thereby improving the controllability of the vehicle. After the tire blows, compared with the normal tire, the vehicle can move a longer distance.
[0073] The aspect ratio of the tire is a ratio of a height and a width of the cross-section of the tire at a standard pressure.
[0074] An objective of this embodiment is to ensure that when the vehicle moves along a circle with a radius of 25 meters at 40 kilometers per hour, unseating does not occur in the tire at zero pressure at an outer side of the circle during a movement.
[0075] A wear-resistant layer is not disposed on an inner surface of the tire tread for the following reasons: 1. making it convenient to repairing the tire; and 2. considering airtightness because there is no airtightness requirement for a wear-resistant layer; and reducing the weight of the tire and reducing a production cost.
Embodiment 2
[0076] Refer to
[0077] The silicone lubricating grease and the nylon fabric have an excellent lubricating property and wear resistance, and a friction coefficient is the same as that in Embodiment 1. The nylon fabric has excellent wear resistance, and a friction coefficient of the nylon fabric is greater than a friction coefficient of the silicone lubricating grease and the nylon fabric.
[0078] The tire has a normal tire pressure. When the vehicle hits a pit and a curb and the inner surface 120 of the tire bead at the tire outer side is subject to impact, the silicone lubricating grease has an adequate lubricating property and is extremely smooth, so that a probability that tire fabrics are subject to impact and damage to swell can be reduced. When the inner surface 130 of the tire bead at the tire inner side is subject to impact, because a friction coefficient of the nylon fabric is less than a friction coefficient of the inner surface of the tire inner surface 500, a probability that tire fabrics are subject to impact and damage to swell can be reduced.
[0079] The same curve and vehicle speed in Embodiment 1 are used to make the clockwise movement in this embodiment. The tire of the left front wheel blows and goes flat, the vehicle body tilts, and the flat tire is subject to the lateral force from the outer side of the vehicle body to the inner side of the vehicle body. The camber angle of the flat-tire wheel becomes positive. The position that bears the maximum support force in the tire is chosen. The height 37 of the outer rim from the horizontal ground is less than the height 38 of the inner rim from the horizontal ground. Because the height of the tire sidewall 200 is greater than the height of the tire sidewall 200 in Embodiment 1, the height difference between the height 37 and the height 38 is greater than that in Embodiment 1. The tire ground support force N1 at the outer rim is greater than the tire ground support force N2 at the inner rim. The tire ground support force N1 at the outer rim is greater than the tire ground support force N1 at the outer rim in Embodiment 1. The tire ground support force N2 at the inner rim is less than the tire ground support force N2 at the inner rim in Embodiment 1. The support force N10 at the contact position on the tire inner surface at the tire outer side is greater than the support force N20 at the contact position on the tire inner surface at the tire inner side. The support force N10 at the contact position on the tire inner surface at the tire outer side is greater than the support force N10 at the contact position on the tire inner surface at the tire outer side in Embodiment 1. The support force N20 at the contact position on the tire inner surface at the tire inner side is less than the support force N20 at the contact position on the tire inner surface at the tire inner side in Embodiment 1.
[0080] A nylon fabric is provided on a contact surface at the contact position 520 on the tire inner surface at the tire inner side, and has a relatively large friction coefficient. At the position, the tire tread 400 is kept still relative to the hub 30 and the horizontal ground 10, and the friction is large. The contact position 510 on the tire inner surface at the tire outer side is the inner surface 120 of the tire bead at the tire outer side. The inner surface 120 of the tire bead at the tire outer side is a semisolid silicone lubricating grease, a friction coefficient is small, and friction is small. The lateral friction F20 at the contact position of the tire bead at the tire inner side is greater than F20 in Embodiment 1. A sum of the lateral friction F20 at the contact position of the tire bead at the tire inner side and the pushing force F21 at the tire bending position at the tire inner side is greater than a sum of the lateral friction F20 at the contact position of the tire bead at the tire inner side in Embodiment 1 and the pushing force F21 at the tire bending position at the tire inner side. A force applied to the tire bead at the tire outer side decreases. A probability that the tire lip 150 at the outer side of the vehicle body is unseated from the tire bead seat 34 at the outer side of the vehicle body and slides into the groove 33 of the hub is less than that in Embodiment 1, so that traffic accidents can be reduced.
Embodiment 3
[0081] Refer to
[0082] During the linear movement of the vehicle, after the left front tire blows and goes flat, the vehicle body tilts, and the camber angle of the flat-tire wheel becomes positive. When the tire of the left front wheel blows during the linear movement, the vehicle body tilts, the flat tire is subject to the lateral force from the outer side of the vehicle body to the inner side of the vehicle body, and the lateral force is relatively small. Because the contact position 510 on the tire inner surface at the tire outer side is the inner surface 120 of the tire bead at the tire outer side, the inner surface 120 of the tire bead at the tire outer side is a semisolid silicone lubricating grease, a friction coefficient is small, and friction is small. Therefore, a probability that the tire lip 150 at the outer side of the vehicle body is unseated from the tire bead seat 34 at the outer side of the vehicle body and slides into the groove 33 of the hub is very small.
[0083] The tilt angle of the vehicle body when the tire of the left front wheel blows during the clockwise movement along the curve of the same vehicle at the same vehicle speed is greater than the tilt angle of the vehicle body when the tire of the left front wheel blows during the linear movement.
[0084] The same curve and the same vehicle speed in Embodiment 2 are used to make the clockwise movement in this embodiment. The tire of the left front wheel blows and goes flat, and the vehicle body tilts. Because the height of the tire sidewall 200 is relatively large, the tilt is relatively large, and a probability that the tire lip on the tire outer side is unseated is greater than that in Embodiment 2.
[0085] The vehicle makes the clockwise movement along a circle with a radius of 25 meters with the left front wheel having a zero pressure. The support force N10 at the contact position on the tire inner surface at the tire outer side is very large. The support force N20 at the contact position on the tire inner surface at the tire inner side is very small or is zero. The lateral force is nearly completely counteracted by the lateral friction F10 at the contact position of the tire bead at the tire outer side and the pulling force F11 at the tire bending position at the tire outer side. The tire lip on the tire outer side is highly prone to unseating. In this case, another solution needs to be adopted to reduce the support force N10 at the contact position on the tire inner surface at the tire outer side, so that the support force N20 at the contact position on the tire inner surface at the tire inner side is increased to resolve the unseating problem.
Embodiment 4
[0086] As shown in
[0087] After the tire has zero pressure and goes flat, a groove structure for avoiding stress concentration is disposed on the outer surface of the tire sidewall, so that stress concentration at a bending position after the tire goes flat can be prevented, thereby improving the bending life.
Embodiment 5
[0088] In this embodiment, in the wear-resistant lubrication layer in Embodiment 1 to Embodiment 3, a silicone lubricating grease, a nylon fabric, and a rubber layer are replaced with a semisolid lubricating grease. The semisolid lubricating grease is bonded to the tire inner surface 500. A thickness of the semisolid lubricating grease does not exceed 0.2 mm. The semisolid lubricating grease and the tire inner surface 500 have excellent affinity, so that the semisolid lubricating grease can be prevented from being thrown off by a rotating wheel.
[0089] The foregoing sequence of the embodiments are merely for the convenience of description, and do not imply the preference among the embodiments.
[0090] Finally, it should be noted that the foregoing embodiments are merely intended for describing the technical solutions of the present disclosure rather than limiting the present disclosure. Although the present disclosure is described in detail with reference to the foregoing embodiments, persons of ordinary skill in the art should understand that they may still make modifications to the technical solutions described in the foregoing embodiments or make equivalent replacements to some the technical features thereof, without departing from the scope of the technical solutions of the embodiments of the present disclosure.