Internally cooled tire-wheel system
11975573 ยท 2024-05-07
Assignee
Inventors
Cpc classification
B60C11/11
PERFORMING OPERATIONS; TRANSPORTING
B60B21/02
PERFORMING OPERATIONS; TRANSPORTING
B60C23/18
PERFORMING OPERATIONS; TRANSPORTING
B60C11/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60C23/18
PERFORMING OPERATIONS; TRANSPORTING
B60B21/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A pneumatic tire may include a tread, an inner tire surface positioned opposite the tread, and an internal heat exchanger attached to the inner tire surface. The wheel assembly may include a wheel rim, the pneumatic tire, and a pump. The pneumatic tire may be attached to the wheel rim. The pump may be attached to the wheel rim outside of the pneumatic tire and configured to rotate with the wheel rim. The pump may be coupled to the internal heat exchanger through an opening in the wheel rim. The wheel assembly may further include a coolant disposed in the internal heat exchanger and configured to absorb heat from the pneumatic tire. The wheel assembly may also include an external heat exchanger configured to remove heat from the coolant.
Claims
1. A pneumatic tire comprising: a pair of sidewalls; a tread for engaging a ground surface, the tread extending between the sidewalls; an inner tire surface opposite the tread, the inner tire surface including a central portion generally parallel with the tread across a width of the tread and located between the sidewalls; and a heat exchanger attached to the central portion of the inner tire surface and located between the sidewalls, the heat exchanger including at least one passageway including multiple circumferential loops arranged in a layer extending generally parallel with the tread across the width of the tread, each circumferential loop extending completely around a circumference of the tire, the heat exchanger further including an inlet connected to the at least one passageway for providing coolant to the at least one passageway and an outlet connected to the at least one passageway for receiving coolant from the at least one passageway.
2. The pneumatic tire of claim 1, further comprising a first conduit connected to the inlet and a second conduit connected to the outlet.
3. The pneumatic tire of claim 2, wherein the first and second conduits are detachably connected to the inlet and outlet using connectors.
4. The pneumatic tire of claim 1, wherein the heat exchanger is bonded to the inner tire surface.
5. The pneumatic tire of claim 1, wherein the heat exchanger is integrally formed on the inner tire surface during formation of the pneumatic tire.
6. The pneumatic tire of claim 1, wherein the heat exchanger is formed from a rubber material.
7. The pneumatic tire of claim 1, wherein the heat exchanger is formed from a plastic material.
8. The pneumatic tire of claim 1, wherein the heat exchanger is formed from a polyvinyl chloride material.
9. The pneumatic tire of claim 1, wherein the heat exchanger is formed from a cross-linked polyethylene material.
10. The pneumatic tire of claim 1, wherein the multiple circumferential loops of the at least one passageway form a coil around the inside tire surface.
11. The pneumatic tire of claim 1, wherein the at least one passageway is defined by a coiled pipe embedded in a body of the heat exchanger formed of a rubber material.
12. A pneumatic tire comprising: a pair of sidewalls; a tread for engaging a ground surface, the tread extending between the sidewalls; an inner tire surface opposite the tread, the inner tire surface including a central portion generally parallel with the tread across a width of the tread and located between the sidewalls; and a heat exchanger bonded to or integrally formed with the central portion of the inner tire surface and located between the sidewalls, the heat exchanger including a coiled pipe embedded in a rubber material, the coiled pipe extending in multiple complete circumferential loops arranged in a layer extending generally parallel with the tread across the width of the tread, each loop extending around a circumference of the tire for conducting a coolant to cool the tire, the coiled pipe having an inlet for receiving coolant from outside of the tire and an outlet for discharging coolant from the coiled pipe.
13. The pneumatic tire of claim 12, further comprising a first conduit connected to the inlet and a second conduit connected to the outlet.
14. The pneumatic tire of claim 13, wherein the first and second conduits are detachably connected to the inlet and outlet using connectors.
15. The pneumatic tire of claim 12, wherein the heat exchanger is bonded to the inner tire surface.
16. The pneumatic tire of claim 12, wherein the heat exchanger is integrally formed on the inner tire surface during formation of the pneumatic tire.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(8) Reference will now be made in detail to embodiments of the present disclosure, one or more drawings of which are set forth herein. Each drawing is provided by way of explanation of the present disclosure and is not a limitation. In fact, it will be apparent to those skilled in the art that various modifications and variations can be made to the teachings of the present disclosure without departing from the scope of the disclosure. For instance, features illustrated or described as part of one embodiment can be used with another embodiment to yield a still further embodiment.
(9) Thus, it is intended that the present disclosure covers such modifications and variations as come within the scope of the appended claims and their equivalents. Other objects, features, and aspects of the present disclosure are disclosed in, or are obvious from, the following detailed description. It is to be understood by one of ordinary skill in the art that the present discussion is a description of exemplary embodiments only and is not intended as limiting the broader aspects of the present disclosure.
(10) The words connected, attached, joined, mounted, fastened, and the like should be interpreted to mean any manner of joining two objects including, but not limited to, the use of any fasteners such as screws, nuts and bolts, bolts, pin and clevis, and the like allowing for a stationary, translatable, or pivotable relationship; welding of any kind such as traditional MIG welding, TIG welding, friction welding, brazing, soldering, ultrasonic welding, torch welding, inductive welding, and the like; using any resin, glue, epoxy, and the like; being integrally formed as a single part together; any mechanical fit such as a friction fit, interference fit, slidable fit, rotatable fit, pivotable fit, and the like; any combination thereof; and the like.
(11) Unless specifically stated otherwise, any part of the apparatus of the present disclosure may be made of any appropriate or suitable material including, but not limited to, metal, alloy, polymer, polymer mixture, wood, composite, or any combination thereof.
(12) Referring to
(13) The inner tire surface 104 is positioned opposite the tread 102. The inner tire surface 104 may be referred to as an inner surface 104 or an inner cavity surface 104. The inner tire surface 104 may define a central cavity 108 within the tire. The central cavity 108 may surround and be open to a cylindrical tire opening 110 through the pneumatic tire 100. The central cavity 108 may be referred to as a central tire cavity 108.
(14) The interior heat exchanger 106 may be attached to the inner tire surface 104. The interior heat exchanger 106 may be referred to as a heat exchanger 106 or a heat exchange conduit 106. The interior heat exchanger 106 may include an interior exchanger inlet 112 and an interior exchanger outlet 114. The interior exchanger inlet 112 may be referred to as an inlet 112. The interior exchanger outlet 114 may be referred to as an outlet 114.
(15) As can best be seen in
(16) As can best be seen in
(17) In the illustrated embodiment, the heat exchanger 106 is bonded to the inside tire surface 104. In other embodiments, the heat exchanger 106 may be integrally formed on the inside tire surface 104 during a manufacturing process of the pneumatic tire 100.
(18) In the illustrated embodiment as seen in
(19) In some embodiments, the heat exchanger 106 may be formed from rubber similar to that of the pneumatic tire 100. In other embodiments, the heat exchanger may be formed from a different material (e.g., plastic, polyvinyl chloride, cross-linked polyethylene, copper pipe, or the like).
(20) Referring to
(21) As can best be seen in
(22) As can best be seen in
(23) In some embodiments, pump 204 may be mechanically driven by a rotation of the wheel rim 202. The pump 204 may be a gravity pump. In the preferred embodiment, the gravity pump may be a positive-displacement pump such as a free piston type cycloid pump, which may use gravity and wheel rotation to create reciprocation (i.e., as the piston or weight reaches the top, it falls due to gravity, which causes the fluid beneath the piston to be displaced). During wheel rotation, a piston inside the free piston type cycloid pump will move in the direction of gravity and thereby causing a positive displacement. Other types of gravity pumps may be used including rotary vane pumps, gravitational plunger pumps, diaphragm pumps, peristatic pumps, or the like. These other types of pumps will need to be altered in order to effectively use gravity to operate the pump. In other embodiments, the pump 204 may be electrically driven. The electrically driven pump may be powered using a battery (not shown). The battery may either be mounted on the wheel or on the frame of the vehicle. If the battery carried by the frame of the vehicle, then the electrically driven pump may be connected to the battery using slip-ring electrical connectors.
(24) The wheel assembly 200 may also include an external heat exchanger 212. The external heat exchanger 212 may also be referred to as an outside coolant to air heat exchanger 212. The external heat exchanger 212 may be positioned on the outer rim surface 208 outside of the central cavity 108. The external heat exchanger 212 may be configured to rotate with the wheel rim 202. The external heat exchanger 212 may be configured to remove heat from the coolant 210. As shown the external heat exchanger 212 is positioned outside of the pump 204. In other embodiments (not shown), the external heat exchanger 212 and the pump 204 may be combined.
(25) As can best be seen in
(26) In some embodiments (not shown), the external heat exchanger 212 may include a heat pump housed either within or outside of the pump 204. The heat pump may use a vapor-compression refrigeration method to remove heat from the coolant and cool the coolant. The heat pump may be powered similar to the electrically driven pump. In other embodiments, the outside coolant to air heat exchanger 212 may naturally exchange heat with the surrounding air as the coolant 210 flows through it. The natural exchange method may incorporate a fan (not shown) to dissipate the heat.
(27) As can best be seen in
(28) As can best be seen in
(29) As can best been seen in
(30) Again, as can best be seen in
(31) In some embodiments, the wheel assembly 200 may include check and directional valves (not shown) positioned between at least the pump 202 and the internal heat exchanger 106.
(32) As can best be seen in
(33) Thus, although there have been described particular embodiments of the present invention of a new and useful INTERNALLY COOLED TIRE-WHEEL SYSTEM it is not intended that such references be construed as limitations upon the scope of this invention except as set forth in the following claims.