Self-inflating tire and pressure regulator
09539869 ยท 2017-01-10
Assignee
Inventors
- Daniel Paul Luc Marie Hinque (Habay-la-Neuve, BE)
- Jeannot Frieden (Uebersyren, LU)
- Anne Therese PERONNET-PAQUIN (Luxembourg, LU)
Cpc classification
B60C23/135
PERFORMING OPERATIONS; TRANSPORTING
Y10T152/10495
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A self-inflating tire assembly includes an air tube connected to a tire and defining an air passageway, the air tube being composed of a flexible material operative to allow an air tube segment opposite a tire footprint to flatten, closing the passageway, and resiliently unflatten into an original configuration. The air tube is sequentially flattened by the tire footprint in a direction opposite to a tire direction of rotation to pump air along the passageway to a inlet control valve. The inlet control valve regulates the inlet air flow to the air tube and the outlet air flow to the tire cavity.
Claims
1. A self-inflating tire assembly comprising: a tire mounted to a rim, the tire having a tire cavity, first and second sidewalls extending respectively from first and second tire bead regions to a tire tread region; an air passageway having an inlet end and an outlet end, the air passageway being composed of a flexible material operative to open and close when the tire rotates, wherein the outlet end is in fluid communication with the tire cavity; an inlet control valve having a regulator body having an interior chamber; a pressure membrane being mounted in the inlet control valve to enclose the interior chamber, wherein the pressure membrane has a lower surface that is positioned to open and close an outlet port mounted in the interior chamber, wherein the pressure membrane is in fluid communication with a tire cavity pressure; wherein the body of the inlet control valve has a first and second flexible duct, wherein said first and second flexible ducts each have an internal passageway; wherein the first flexible duct has a first end connected to an inlet filter assembly and a second end is connected to the interior chamber of the inlet control valve, wherein the second flexible duct has a first end connected to the outlet port of the inlet control valve, and a second end in fluid communication with the inlet end of the air passageway.
2. The self-inflating tire assembly of claim 1 wherein the air passageway is integrally formed in the sidewall of the tire.
3. The self-inflating tire assembly of claim 1 wherein a spring biases the pressure membrane in an open position.
4. The self-inflating tire assembly of claim 3 wherein the spring is a leaf spring.
5. The self-inflating tire assembly of claim 1, wherein the length of the air passageway is greater than 10 degrees.
6. The self-inflating tire assembly of claim 1, wherein the length of the air passageway is about the same as the length of a tire footprint.
7. The self-inflating tire assembly of claim 1, wherein the length of the air passageway is in the range of about 10 to about 30 degrees.
8. The self-inflating tire assembly of claim 1, wherein the air passageway is substantially elliptical in cross-section.
9. The self-inflating tire assembly of claim 1, wherein the air passageway is positioned in a chafer.
10. The self-inflating tire assembly of claim 1, wherein a first check valve is located between the outlet end of the air passageway and a tire cavity.
11. The self-inflating tire assembly of claim 10 wherein the first check valve has an insert sleeve affixed to one of the first and second sidewalls, wherein the insert sleeve has an internally threaded bore that extends completely therethrough, wherein the internal bore has a first end open to the tire cavity, and a second end connected to the air passageway outlet end, wherein a flexible stopper is received in the internal bore.
12. The self-inflating tire assembly of claim 11 wherein the flexible stopper has a disk shaped lower end that is positioned to open and close the air passageway outlet end.
13. The self-inflating tire assembly of claim 1 wherein the filter assembly has an insert sleeve affixed to one of said first and second sidewalls, wherein the insert sleeve has an internally threaded bore that extends completely therethrough, wherein the internal bore has a first end in the tire cavity and a second end open to the ambient air outside the tire, an air passage screw having an internal passageway is received in the first end of the insert sleeve, a filter is received within the internal passageway of the air passage screw.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will be described by way of example and with reference to the accompanying drawings in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
(16)
(17)
(18)
(19)
DETAILED DESCRIPTION OF THE INVENTION
(20) Referring to
(21) Pump Assembly 14
(22) The pump assembly 14 includes an air passageway 43 which may be molded into the sidewall of the tire during vulcanization or formed post cure. When the air passageway is molded into the tire sidewall as shown in
(23) As shown in
(24) Inlet Control Valve
(25) A first embodiment of an inlet control valve 300 is shown in
(26) The pressure membrane has an upper surface 551 that is substantially planar. The pressure membrane has a lower surface 553 wherein a plug 555 extends from the lower surface. The pressure membrane further has an annular sidewall 556 which extends downwardly from the upper surface, forming a lip 557. The lip 557 is preferably annular, and snaps in an annular cutout 559 formed on the outer housing 310. The pressure membrane is a disk shaped member made of a flexible material such as, but not limited to, rubber, elastomer, plastic or silicone. The outer surface 551 of the pressure membrane is in fluid communication with the pressure of the tire chamber 40. The lower surface 553 of the pressure membrane is in fluid communication with the interior chamber 320. The plug 555 is positioned to close the outlet port 330. A spring 580 is positioned in the interior chamber 320 to bias the pressure membrane 550 in the open position. The spring has a first end 582 that is received about the plug 555. The spring has a second end 584 that is wrapped around the outer surface of the outlet port 330. A first washer 586 may be received between the spring first end 582 and the pressure membrane 550. A second washer 588 may be received between the spring second end 584 and the bottom of the chamber 313. Thus the balance of pressure forces on each side of the pressure membrane actuates the pressure membrane plug 555 to open and close the outlet port 330. A membrane support member 590 is received over the pressure membrane 550. The membrane support member 590 has a plurality of holes 592 in the outer surface 591 of the lid, to allow the pressure membrane to be in fluid communication with the tire cavity 40. The membrane support member 590 is formed of a rigid material, and the support member allows a preloading of the spring via the pressure membrane.
(27) Extending from the central housing 310 is a first and second flexible duct 400, 500, positioned on either side of the central housing 310. Each flexible duct 400, 500 may be integrally formed with the central housing as shown, or be a discrete part connected to the central housing 310. Each flexible duct 400, 500 has an internal passageway 404, 504 for communicating fluid.
(28) The internal passageway 404 of the first flexible duct 400 has a first opening 402 that is located inside the interior chamber 320. The internal passageway 404 of the first flexible duct 400 has a second end 406 that is in fluid communication with an inlet filter assembly 450. The inlet device 450 supplies outside filtered air to the regulator via the first flexible duct 400, and is described in more detail below.
(29) The internal passageway 504 of the second flexible duct 500 is shown integrally formed with the outlet port 330 of the interior chamber 320. The internal passageway 504 has a second end 506 in fluid communication with an inlet fitting 100. The outer end 511 of the second flexible duct 500 terminates in a circular flange 510.The inlet fitting 100 may be a hollow screw such as a banjo screw. The inlet fitting 100 has an internal passageway 102 with inlet holes 104 that communicate flow to the inlet 42 of the pump passageway 43. The inlet fitting 100 may comprise a screw with an internal passageway, and has an outer threaded surface 106 that is received in a sleeve 110. The sleeve 110 has a bore that extends completely therethrough. The sleeve is mounted in the tire.
(30) A second embodiment of the inlet control valve 1100 is shown in
(31) Inlet Filter Assembly
(32) The inlet filter assembly 450 is shown in
(33) Pump Outlet Check Valve
(34) As described above, a first end 42 of the pump is connected to a regulator and a check valve. The second end 44 of the pump is connected to a pump outlet valve 200. The pump outlet valve is shown in
(35) The flexible stopper is mounted inside the central passage so that each shoe 250 of the flexible stopper is received in the annular retainer slot 230, and the disk lower end 242 is positioned to open and close the pump end 44.
(36)
(37) An additional check valve like the check valve 200 may be optionally used between the pump inlet passageway 42 and the outlet of the regulator.
(38) System Operation
(39) As will be appreciated from
(40) The inlet control valve 300 controls the flow of outside air into the pump. If the tire pressure is low, the membrane 550 in the inlet control valve 300 is responsive to the tire pressure in the tire cavity 40. If the tire cavity pressure falls below a preset threshold value, the plug of the membrane will unseat from the central outlet port 330. Outside air will enter the filter assembly 450, exit through the filter and enter the first flexible duct 400, as shown in
(41) If the tire pressure is sufficient, the inlet control valve will block flow from exiting the inlet control valve, as shown in
(42) The location of the pump assembly in the tire will be understood from
(43) As described above, the length L of the pump passageway may be about the size of the tire's footprint length Z. However, the invention is not limited to same, and may be shorter or longer as desired. See
(44) The pump assembly 14 may also be used with a secondary tire pressure monitoring system (TPMS) (not shown) of conventional configuration that serves as a system fault detector. The TPMS may be used to detect any fault in the self-inflation system of the tire assembly and alert the user of such a condition.
(45) Variations in the present invention are possible in light of the description of it provided herein. While certain representative embodiments and details have been shown for the purpose of illustrating the subject invention, it will be apparent to those skilled in this art that various changes and modifications can be made therein without departing from the scope of the subject invention. It is, therefore, to be understood that changes can be made in the particular embodiments described which will be within the full intended scope of the invention as defined by the following appended claims.