Inflation Manifold
20220118803 · 2022-04-21
Inventors
- Tim Musgrave (San Antonio, TX, US)
- Mark Kevin Hennig (Corpus Christi, TX, US)
- Charles Blanton Robertson (Port Aransas, TX, US)
- James Raymond Snider (San Antonio, TX, US)
- Jonathan Gravell (San Antonio, TX, US)
Cpc classification
B60C23/007
PERFORMING OPERATIONS; TRANSPORTING
B60C23/0496
PERFORMING OPERATIONS; TRANSPORTING
B60S5/043
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60C29/06
PERFORMING OPERATIONS; TRANSPORTING
B60C23/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An inflation manifold connected to dual pneumatic tires by air hoses provides a central location for tire inflation and location of pressure sensors. A hose block connected to dual pneumatic tires by air hoses provides a central location for location of pressure sensors. The pressure sensors may be TPMS sensors or a combination of TPMS sensor and pressure gauge.
Claims
1-102. (canceled)
103. A fluid routing system comprising: a first air hose connected at a first end to a tire valve stem of a first tire and connected at a second end to a support structure mounted at the wheel end of a vehicle, the first air hose included in a path of sealed fluid communication between said tire valve stem and at least one port; said at least one port being positioned on the wheel end of a vehicle in an accessible position for use by a vehicle operator when the first air hose is connected to said support structure.
104. The fluid routing system of claim 103 said support structure comprising at least one of an inflation manifold, rotary union, hose support block, or support bracket.
105. The fluid routing system of claim 103 further comprising: a first connector disposed at the second end of said air hose to connect the first air hose to the support structure.
106. The fluid routing system of claim 105, the at least one port being an auxiliary port of said first connector.
107. The fluid routing system of claim 106, said auxiliary port including a removable cap comprising a pressure sensor.
108. The fluid routing system of claim 106, said auxiliary port including a one-way check valve, said removable cap being configured for opening the one-way check valve so as to provide sealed fluid communication between the first air hose and the pressure sensor when the removable cap is connected to said auxiliary port.
109. The fluid routing system of claim 108, said pressure sensor including a post adapted for opening said one-way check valve.
110. The fluid routing system of claim 103 said at least one port comprising an inflation fitting, the inflation fitting being removably or integrally connected to said support structure.
111. The fluid routing system of claim 103 said at least one port comprising an inflation fitting, the inflation fitting being connected to a support bracket.
112. The fluid routing system of claim 111 said inflation fitting being connected to the support bracket so that a hose fitting may be directly attached to the inflation fitting; said first air hose being configured for removable connection to the inflation fitting through the hose fitting.
113. The fluid routing system of claim 111 said first air hose being removably connected to said inflation fitting.
114. The fluid routing system of claim 111 said inflation fitting passing through the support bracket so that a hose fitting may be directly attached to the inflation fitting; said air hose being configured for removable connection to the inflation fitting through the hose fitting.
115. The fluid routing system of claim 111, said inflation fitting comprising a one-way check valve so as to prevent air from leaking through the inflation fitting when the inflation fitting is not connected to an external pressure source.
116. The fluid routing system of claim 111, said inflation fitting including a flow- through cap or non flow-through cap.
117. The fluid routing system of claim 103 said first air hose being configured for secured and removable connection to said support structure using a knurled nut connector.
118. The fluid routing system of claim 103 said first air hose comprising a threaded post for connecting the first air hose to said support structure.
119. The fluid routing system of claim 103 said first air hose comprising a threaded connector including a post for mechanically engaging a tire valve when the first air hose is connected to the tire valve stem.
120. The fluid routing system of claim 103 further comprising a second air hose, the first and second air hoses comprising a pair of air hoses; said pair of air hoses being sized differently in length so that one of said pair of air hoses is sized in length to route air to an inner tire of a dual wheel vehicle and the other of said pair of air hoses is sized in length to route air to an outer tire of the dual wheel vehicle.
121. The fluid routing system of claim 103 further comprising: a first connector disposed at the second end of said air hose to connect the first air hose to the wheel end support, the first connector including an in-line pressure sensor.
122. The fluid routing system of claim 121, said first connector being removably or fixedly attached to said first air hose.
123. The fluid routing system of claim 103 further comprising: a first connector disposed at the second end of said first air hose to connect the first air hose to the support structure, the first connector including an auxiliary port with a pressure sensor disposed therein.
124. The fluid routing system of claim 103 said fluid routing system further comprising: a first connector removably or fixedly attached to said first air hose; said first connector including a post having a first one-way check valve disposed therein, said post being configured to engage a second one-way check valve included in a hose fitting mounted to said support structure so as to open the second one-way check valve.
125. The fluid routing system of claim 124, said first connector further comprising an in-line pressure sensor.
126. The fluid routing system of claim 124, said first air hose further comprising an in- line pressure sensor.
127. The fluid routing system of claim 124, said first connector further comprising an auxiliary port including a pressure sensor.
128. The fluid routing system of claim 124, said first connector further comprising an auxiliary port.
129. The fluid routing system of claim 103 further comprising a second connector disposed at the first end of said air hose, the second connector being configured for mechanically engaging and opening a tire valve when the air hose is connected to the tire valve stem.
130. An air hose comprising: hosing material flexibly extending between a first end and a second end; a first connector connected to the hosing material at said first end, the first connector being configured for mechanically engaging a tire valve when the air hose is connected to a tire valve stem including the tire valve; a second connector connected to the hosing material at said second end, the second connector being configured for connection to a support structure; said second connector including an auxiliary port; said auxiliary port being positioned towards a central location of the wheel end of a vehicle in an accessible position for use by a vehicle operator when the air hose is connected to said support structure.
131. The air hose of claim 131 said second connector including a first one-way check valve disposed in a first post, the first one-way check valve and first post being configured for engagement with a second one-way check valve and a second post, the second one-way check valve and second post being mounted in a hose fitting of said support structure; said first post being configured to engage a second one-way check valve so as to open said second one-way check valve; said first one-way check valve being configured to open upon engagement with a second post.
132. The air hose of claim 131, said air hose comprising an in-line pressure sensor.
133. The air hose of claim 131, said auxiliary port including a removable cap comprising a pressure sensor.
134. The air hose of claim 133, said auxiliary port including a one-way check valve, said removable cap being configured for opening the one-way check valve so as to provide sealed fluid communication to the pressure sensor when the removable cap is connected to said auxiliary port.
135. The air hose of claim 134, said pressure sensor including a post adapted for opening said one-way check valve.
136. An air hose comprising: hosing material flexibly extending between a first end and a second end; a first connector connected to the hosing material at said first end, the first connector being configured for mechanically engaging a tire valve when the first connector is engaged with a valve stem of a vehicle; a second connector connected to the hosing material at said second end, the second connector being configured for connection to a support structure of a vehicle, the second connector comprising: a first one-way check valve disposed in a first post, said first post being configured to engage a second one-way check valve included in a hose fitting mounted to said wheel end support structure; engagement of said first post with said second one-way check valve opening said second one-way check valve; said first one-way check valve being configured to engage a second post disposed in said wheel end support structure, engagement of said second post with said first one-way check valve opening said first one- way check valve.
137. The air hose of claim 136 said air hose further comprising an in-line pressure sensor.
138. The air hose of claim 136 said air hose further comprising an auxiliary port, said auxiliary port being positioned towards a central location of the wheel end of a vehicle in an accessible position for use by a vehicle operator when the air hose is connected to said support structure.
139. An air hose comprising: hosing material flexibly extending between a first end and a second end; a first connector connected to the hosing material at said first end, the first connector being configured for mechanically engaging a tire valve when the air hose is connected to a tire valve stem of a vehicle; a second connector connected to the hosing material at said second end, the second connector being configured for connection to a support structure of a vehicle; said second connector including an auxiliary port including a removable cap comprising a pressure sensor, the auxiliary port being positioned towards an outward facing side of the wheel end of a vehicle when the air hose is connected to said support structure.
140. The air hose of claim 139, said auxiliary port including a one-way check valve, said removable cap being configured for opening the one-way check valve so as to provide sealed fluid communication to the pressure sensor when the removable cap is connected to said auxiliary port.
141. A fluid routing system comprising: a first air hose connected at a first end to a tire valve stem of a first tire and connected at a second end to a rotary union, the first air hose included in a path of sealed fluid communication between said tire valve stem and at least one port; said at least one port being positioned on the wheel end of a vehicle in an accessible position for use by a vehicle operator when the first air hose is connected to said rotary union.
142. The fluid routing system of claim 141 further comprising: a first connector disposed at the second end of said air hose to connect the first air hose to the rotary union.
143. The fluid routing system of claim 142, the at least one port being an auxiliary port of said first connector.
144. The fluid routing system of claim 143, said auxiliary port including a removable cap comprising a pressure sensor.
145. The fluid routing system of claim 144, said auxiliary port including a one-way check valve, said removable cap being configured for opening the one-way check valve so as to provide sealed fluid communication between the first air hose and the pressure sensor when the removable cap connected to said auxiliary port.
146. The fluid routing system of claim 144, said pressure sensor including a post adapted for opening said one-way check valve.
147. A fluid conduit comprising: a fluid hose having a first end and a second end; a first connector disposed at the first end, the connector being adapted to removably couple to a valve stem of a pneumatic vehicle tire so as to place the fluid hose in fluid communication with the pneumatic vehicle tire; a second connection disposed at the second end, the second end being adapted for coupling to a rotary union of an automatic tire inflation system, the rotary union being mounted on the axis of rotation of the pneumatic vehicle tire; and a tire pressure monitoring system (TPMS) sensor coupled to the fluid hose at the second end so as to position the TPMS sensor toward the axis of rotation and away from the valve stem, the TPMS sensor being in fluid communication with the fluid hose so as to sense fluid pressure in the fluid hose.
148. The fluid conduit of claim 147, second end being further adapted for coupling to a hose support block.
149. The fluid conduit of claim 148, the hose support block comprising a dummy rotary union.
150. The fluid conduit of claim 147, the valve stem comprising a first one-way valve; and the first end comprising a post configured to open the first one-way valve when the first connector is coupled to the valve stem.
151. The fluid conduit of claim 103, the fluid hose comprising an auxiliary port disposed at the second end; and the TPMS sensor being coupled to the auxiliary port.
152. The fluid conduit of claim 148, the second end comprising a second one-way valve, the second one-way valve being normally closed when the second end is not coupled to the rotary union or to the hose support block.
153. The fluid conduit of claim 103, the TPMS sensor being removably coupled to the auxiliary port.
154. The fluid conduit of claim 151, the auxiliary port comprising a second one way valve; the TPMS sensor comprising a second post configured to open the second one-way valve when the TPMS sensor is coupled to the auxiliary port.
155. The fluid conduit of claim 147, the TPMS sensor being non-removably integrated into the fluid hose.
156. The fluid conduit of claim 103 the TPMS sensor being sealingly coupled in-line with the fluid hose.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0043] As may be seen in
[0044] The vehicle 2 may be provided with an inflation manifold 16 that may be used to more conveniently connect the dual tires at each end of an axle to a source of pressurized air to maintain the tires at a desired air pressure. The inflation manifold 16 may connect to the valve stems of each tire using air hoses 14 in fluid communication with each tire 12 for communicating air from the air pressure source to and from the tires 12. As noted above, the disclosed inflation manifold 16 may be used with any vehicle having dual tires at the end of an axle, such as class 7 and 8 trucks, passenger trucks, cargo trucks, RVs, trailers, farm tractors, agricultural vehicles, and the like.
[0045] One embodiment of an inflation manifold 16 is illustrated in
[0046] In some embodiments, the inflation manifold may be mounted to the hubcap in the same manner that a rotary air connection of an automatic tire inflation system might be mounted. As may be seen in the embodiment of
[0047] One embodiment of an inflation manifold is illustrated in
[0048] As may be seen in the embodiment of
[0049] As may be seen in the embodiment of
[0050] As may be seen in the embodiment of
[0051] The valve-and-post arrangement is shown in more detail in
[0052] Pressurized fluid flowing from the air hose to atmosphere (such as flowing out of the hose when uncoupled from the inflation manifold) may be blocked by the one-way valve 144 in its normally-closed state. When the hose connector is coupled to the hose fitting 122, the hose post 142 may co-act with the poppet of one-way valve 124 to open the one-way valve 124 against the spring pressure, and the valve post 130 may co-act with the poppet of one-way valve 144 to open the one-way valve 144 against spring pressure. Such coupling may serve to open both one-way valves 144 and 124, thus allowing free flow of fluid back and forth through the one-way valves 144 and 124.
[0053]
[0054] Thus, for such embodiments, the fluid inflating pressure need only overcome the bias of the one-way valve 57. Such a valve arrangement allows for the air hose 28 to be disconnected from the tire valve stem or the inflation manifold without releasing fluid from the tire. Disconnecting the air hose from the tire valve stem allows the one-way check valve 44 to close. Disconnecting the air hose from the hose fitting 36 may allow both of the one- way check valves 48 and 50 to close, thus sealing both the air hose and the inflation manifold.
[0055] In other embodiments, such as may be seen in
[0056] An inflation manifold may be configured in a variety of ways. For example, as may be seen in
[0057]
[0058] As may be seen in the embodiment of
[0059] In other embodiments, an inflation manifold with no vent channel may be configured to allow hubcap pressure to escape when the inflation manifold is mounted to a hubcap of the type have vent holes (as in
[0060]
[0061] Of course, various other valve arrangements may be used, such as may be seen in the foregoing embodiment.
[0062]
[0063] In further embodiments, such as may be seen in
[0064] In other embodiments, a TPMS module (not shown) may be mounted to an outer or top face of the inflation manifold, and may be in fluid communication with one or more of the fluid channels therein so as to sense pressure in one or more of the vehicle tires to which the inflation manifold is in fluid communication. The TPMS module may comprise a small electronics package having typical TMPS sensor components, and may be shaped so as to conform to the shape of the inflation manifold. The TPMS module may comprise an electronic display for displaying tire information, such as tire pressure and location. The TPMS module may further comprise a solar power source. In some embodiments, the TPMS module may be configured to sense other wheel-end phenomena, such as count tire rotations, sense ambient environmental conditions, detect moisture, detect wheel speed, detect vehicle speed and motion, detect vehicle location, and other vehicle data. Wheel-end data may be communicated via TPMS communication or by any other suitable wired or wireless communication mode to a monitor in the vehicle cab, or to a driver mobile device, or to a remote location (such as a fleet maintenance facility or fleet dispatcher).
[0065] By mounting or disposing a TPMS sensor in an inflation manifold, the sensor may stay with the truck or trailer, and may remain further associated with a particular tire or tire position, rather than be removed when the tire is changed. In the prior art, TPMS sensors are disposed on the tire stem or in the tire cavity or to each wheel. Thus, when a tire is changed, the TPMS sensor may be lost, damage or simply not re-installed. And, for TPMS sensors that identify a particular wheel or location on the truck or trailer, failure to replace the TPMS sensor or installing the TPMS sensor on the wrong tire may result in erroneous data being transmitted to the TPMS system. Installing a TPMS sensor in or about the inflation manifold may avoid such issues.
[0066] As may be seen in
[0067] An inflation manifold 16 may be also provided in dummy form as a hose support block 165. In such an embodiment, the block lacks fluid channels, and may simply be used to secure the ends of air hoses (such as ATIS air hoses) when not in use. Such air hoses provide easier tire inflation or tire pressure check. Air hoses with auxiliary ports or pressure relief valves may be used. A TPMS sensor may be disposed on an air hose with an auxiliary port, thus advantageously moving the TPMS sensor away from the tire as discussed above.
[0068] Thus, for a vehicle 2 that does not have an ATIS, the vehicle may be provided with a hose support block 165. Typically, for vehicles that have an ATIS installed, a rotary union may be used in place of the hose support block 165 to connect the one or more tires at each end of an axle (whether trailer, drive or steer) to a source of pressurized air to maintain the tires at a desired air pressure. The ATIS rotary union may connect to the valve stems of each tire using air hoses 14 in fluid communication with each tire 12 for communicating air from the air pressure source to and from the tires 12.
[0069] For vehicle having TPMS sensors for each tire but no ATIS, however, ATIS-ready air hoses and a hose support block 165 may be used to move the TPMS sensors toward a more central location on the wheel end.
[0070] As may be seen in
[0071] The hose support block, such as those depicted in
[0072] In other embodiments, a rotary union body, such as the air connection disclosed in Applicant's U.S. Pat. No. 5,769,979, may be used without any rotary sealing interface parts, such as annular seals or face seals, but with ATIS hose fittings, such as in
[0073] In other embodiments, the post 184 may be sealed to prevent fluid flow therethrough, thus leaving a single fluid channel (not shown) extending between the fittings 182. By using such a fluid channel in connection with fluid hosing having the valve arrangements of the hose 220 of
[0074] In some embodiments, an ATIS air hose adapted for use with a TPMS may be used. As may be seen in the embodiment of
[0075] In other embodiments, the auxiliary port 210 may have a one-way valve 212 disposed therein so that when the TPMS sensor 204 is removed, pressurized fluid may not escape from the tire. The TPMS sensor may be provided with a post 216 disposed so that when the TPMS sensor is coupled to the auxiliary port, the post may mechanically actuate the valve 212 by depressing the poppet 214. By holding the normally-closed valve 212 open, pressurized fluid may communicate freely from the tire 200 fluid cavity 202 with the TPMS sensor 204.
[0076] A hose support block 222 may have an ATIS-ready hose fitting 224 mounted thereto. A one-way check valve 218, such as a Schrader® valve, may be disposed in the hose fitting 207. Thus, when the air hose 186 is connected to the tire stem, the normally-closed one-way valve 198 may be held open; however, the valve 218 may prevent fluid from escaping from the air hose when the hose is disconnected from the hose support block. In some embodiments, the tire may be inflated by disconnecting the air hose from the hose support block and coupling the end of the hose to a pressurized fluid source.
[0077] In some embodiments, a one-way check valve 217 (such as a check valve 124 of
[0078] The embodiments of
[0079] As shown in
[0080] Such a valve arrangement allows for the air hose to be disconnected from the tire valve stem or the hose block without releasing fluid from the tire. Disconnecting the air hose from the tire valve stem allows the one-way check valve in the valve stem to close. Disconnecting the air hose from the hose fitting on a hose block having a fluid channel may allow both of the one-way check valves in the hose post and the fitting to close, thus sealing both the air hose and the hose block.
[0081] In other embodiments, the one-way check valve and post may be replaced with a fixed post that opens the one-way check valve when the hose connector is connected to the hose fitting, much like the post-and-valve arrangement for one-way check valve 228 of
[0082] A hose support block may be configured to allow mounting to a hubcap, such as by including a threaded post that may be screwed into the hubcap. In other embodiments, the hose support block may be bolted or screwed to the hubcap, or glued, or removably mounted using any suitable fastener, such as hook-and-loop fastener. In yet other embodiments, the hose support block may be integrated into the hubcap, or configured to replace all or part of a hubcap sight glass, or be configured as a ring that may be disposed under the hubcap sight glass. In further embodiments, the hose support block may be mounted to any other part of the wheel-end, such as to the wheel or hub. In yet further embodiments, the hose support block may be mounted to a bracket attached to a wheel-end.
[0083] A hose support block may be made from any available ATIS rotary union, whether used intact or with rotary seal parts removed. Similarly, air hoses may be used from any suitable ATIS. In some embodiments, an ATIS manufacturer may provide a hose support block and ATIS air hoses for a vehicle having TPMS. The hose support block and ATIS may be compatible with the manufacturer's ATIS. The hose support block and ATIS hoses may be installed on the vehicle. Later, when the vehicle is to be fitted with an ATIS, then the ATIS may be installed and a functioning rotary union may replace the hose support block. The first-provided ATIS air hoses thus need not be replaced and may be used with the functioning rotary union.
[0084] The disclosed hose support block may be used with any ATIS-capable vehicle having a tire at the end of an axle, such as class 7 and 8 trucks, passenger vehicles, cargo trucks, RVs, trailers, farm tractors, agricultural vehicles, and the like.
[0085] The one-way valves may be Schrader® valves or any other suitable normally-closed one-way valves.
[0086] By mounting or disposing a TPMS sensor on an air hose near a hose support block, the sensor may stay with the truck or trailer, and may remain further associated with a particular tire or tire position, rather than be removed when the tire is changed. As noted above, in the prior art, TPMS sensors are disposed on the tire stem or in the tire cavity or to each wheel. Thus, when a tire is changed, the TPMS sensor may be lost, damaged or simply not re-installed. And, for TPMS sensors that identify a particular wheel or location on the truck or trailer, failure to replace the TPMS sensor or installing the TPMS sensor on the wrong tire may result in erroneous data being transmitted to the TPMS system. Installing a TPMS sensor in or about the hose support block may avoid such issues.
[0087] In some embodiments, a hose block may comprise a bracket, as in the embodiment of
[0088] The fluid conduit 265 is shown in further detail in
[0089] TPMS sensor may comprise a digital display (not shown) to provide a visual indication of tire pressure. The fluid conduit may be integral to the TPMS sensor, or the TPMS sensor may be permanently or removably coupled to the fluid port.
[0090] A pressure sensor may include a TPMS sensor and a pressure gauge for use on a vehicle, such as in connection with an inflation manifold or hose block, or with an air hose as described herein. Referring to
[0091] Now referring to
[0092] The pressure gauge 260 may be configured to sealingly couple to the tire valve stem 268. The gauge 260 may include a visual display configured to visually represent tire pressure. In other embodiments, the TPMS sensor 258 may comprise such a visual display. Such a visual display may be a digital screen 270 or may be an analog needle and dial.
[0093] As seen in
[0094] The system 274 may be packaged in a housing 288. The housing 288 may be constructed of a polymer or metallic substance such that the housing 288 is resistant to the environmental conditions seen by commercial vehicles. The housing may enclose all other components while allowing access to the common feed and outlet paths 284 and 286.
[0095] Alternately, the system 274 may be packaged such that the TPMS sensor 276 and the gauge 278 are housed in separate enclosures. As some TPMS sensors 276 may require an onboard power source 290, a battery or other power source may be disposed inside the case. Alternate onboard power sources may include fuel cells, capacitors, dynamos located in a fluid flow path, and any other portable power source that may be known in the state of the art.
[0096] The common feed path 284 may be in fluid communication with the internal pressure of the tire and common outlet path 286 is in fluid communication with any other tire inflation related components or systems. The pressure gauge 278 may monitor tire pressure independent of The TPMS sensor 276 and allow for a second comparative pressure reading by which to evaluate the accuracy of the TPMS sensor 276 reading. The pressure gauge 278 may maintain a visual representation of the pressure reading such that a user may readily assess the tire pressure. Such a pressure gauge 278 may be an analog or digital device and maintain a display 270 appropriate to the sensing device of the gauge 278. For example, a digital gauge may maintain a numeric digital readout while an analog gauge may maintain a needle and dial style of readout. In addition to serving as a method of verifying the TPMS sensor 276 reading, the pressure gauge 278 also may allow a user to determine the severity of the low tire pressure event. Similarly, the TPMS sensor 276 may include a visual display. In some embodiments, a single visual display may be used to display tire pressure information from both the pressure gauge and the TPMS sensor.
[0097] In another embodiment, as illustrated in
[0098] TPMS sensor 258 disposed internal to a tire 256. In such a configuration, as illustrated in
[0099] In some embodiments, the system valve stem 298 may be separable from the sensor 258 for the purpose of installation with a tire. Such a separable joint 300 may be disposed at the sensor-valve stem junction or may be disposed along the length of the valve stem 298. The latter design resulting in a sensor with a partial valve stem section 298A and a gauge display with a partial valve stem section 298B, that when mated together form a full valve stem 298.
[0100] The display 270 may be a LED or LCD screen that provides a visual representation of the tire pressure. Based on the data gathered from the display, a user may be able decide between alternate courses of action depending on the severity of the tire conditions. Such actions may include whether to continue to the nearest maintenance facility, immediately attempt to refill the tire, or that an immediate tire change may be warranted. With the minimal data of a low-pressure alarm being triggered, as is with most TPMS modules, the user may not have the data required to make an informed decision as to the optimal course of action. This lack of on-hand data may result in generalized policies and procedures being written for or by users and thus likely lead to situations in which the most efficient solution was not implemented. Additionally, for users without defined policies in place, time may be wasted in contemplating the best course of action due to the lack of data on which to make such a decision.
[0101] The inflation manifold may thus be variously embodied, and wheel end assemblies may thus be variously formed, as described in the following clauses:
[0102] 1. An inflation manifold comprising a first fluid channel having a first inlet and a first outlet, the first inlet configured for sealing connection to a first tire; and a second fluid channel having a second inlet and a second outlet, the second inlet configured for sealing connection to a second tire.
[0103] 2. The inflation manifold of clause 1 further comprising a first normally-closed one-way valve disposed at the first outlet so as to prevent fluid from flowing from the manifold when closed; and a second normally-closed one-way valve disposed at the second outlet so as to prevent fluid from flowing from the manifold when closed.
[0104] 3. The inflation manifold of clause 2, wherein the first normally-closed one-way valve and the second normally-closed one-way valve are automobile tire valves.
[0105] 4. The inflation manifold of clause 2 further comprising a first valve stem disposed in the first outlet, the first normally-closed one-way valve being disposed in the first valve stem; and a second valve stem disposed in the second outlet, the second normally-closed one-way valve being disposed in the second valve stem.
[0106] 5. The inflation manifold of clauses 1, 2, 3 or 4 further comprising a first fitting disposed in the first inlet and being configured for removable coupling to a first fluid conduit, and a second fitting disposed in the second inlet and being configured for removable coupling to a second fluid conduit.
[0107] 6. The inflation manifold of clause 5, the first fitting comprising a first actuator post; and the second fitting comprising a second actuator post.
[0108] 7. The inflation manifold of clause 5 further comprising a first fitting valve disposed in the first fitting, the first fitting valve comprising a normally-closed one-way valve and disposed so as to prevent fluid from flowing from the manifold when closed; and a second fitting valve disposed in the second fitting, the second fitting valve comprising a normally-closed one-way valve and disposed so as to prevent fluid from flowing from the manifold when closed.
[0109] 8. The inflation manifold of clause 7, the first fitting valve comprising a first actuator post; and the second fitting valve comprising a second actuator post.
[0110] 9. The inflation manifold of clause 8, the first fitting valve comprising a first fluid channel disposed so as to allow fluid to flow through the first fluid channel when the first fitting valve is open; and the second fitting valve comprising a second fluid channel disposed so as to allow fluid to flow through the second fluid channel when the second fitting valve is open.
[0111] 10. The inflation manifold of clause 1 further comprising a top face, a bottom face and one or more side faces, the first inlet and second inlet each being disposed on one of the one or more side faces, and the first outlet and second outlet each being disposed on the top face.
[0112] 11. The inflation manifold of clause 10, the bottom face being configured for removably mounting to a hubcap.
[0113] 12. The inflation manifold of clause 10, the bottom face being configured for removably mounting to bracket mounted to a hub.
[0114] 13. The inflation manifold of clause 1 further comprising a top face, a bottom face and one or more side faces, the first inlet, second inlet, first outlet and second outlet each being disposed on one of the one or more side faces.
[0115] 14. The inflation manifold of clauses 10 or 13, the inflation manifold being in the shape of a cylinder.
[0116] 15. The inflation manifold of clauses 10 or 13, the inflation manifold being in the shape of a cube.
[0117] 16. The inflation manifold of clause 1 further comprising one or more faces, the first inlet, second inlet, first outlet and second outlet each being disposed on one of the one or more side faces.
[0118] 17. The inflation manifold of clause 14, further comprising a groove disposed circumferentially around the cylinder curve; a radial fluid channel extending from the groove to the central axis of the inflation manifold; an axial fluid channel extending from the bottom face to the radial fluid channel; and an annular seal disposed in the groove so as to seal the radial fluid channel, the annular seal configured to flex out of the groove to relieve fluid pressure in the radial fluid channel.
[0119] 18. The inflation manifold of clause 1, the first fluid channel comprising a first port, and the second fluid channel comprising a second port.
[0120] 19. The inflation manifold of clause 18, further comprising a first tire pressure sensor disposed at the first port; and a second tire pressure sensor disposed at the second port.
[0121] 20. The inflation manifold of clause 19, wherein the first tire pressure sensor is disposed in the first port and the second tire pressure sensor is disposed in the second port.
[0122] 21. The inflation manifold of clause 19, wherein the first tire pressure sensor is removably disposed at the first port and the second tire pressure sensor is removably disposed at the second port.
[0123] 22. The inflation manifold of clause 19, wherein the first tire pressure sensor is removably coupled to the first port and the second tire pressure sensor is removably coupled to the second port.
[0124] 23. The inflation manifold of clause 18, further comprising a first normally-closed one-way valve disposed at the first outlet so as to prevent fluid from flowing from the manifold when closed; a second normally-closed one-way valve disposed at the second outlet so as to prevent fluid from flowing from the manifold when closed; a first valve stem disposed in the first outlet, the first normally-closed one-way valve being disposed in the first valve stem; a second valve stem disposed in the second outlet; a third valve stem disposed in the first port; and a fourth valve stem disposed in the second port.
[0125] 24. The inflation manifold of clause 23, further comprising a first tire pressure sensor coupled to the third valve stem; and a second tire pressure sensor coupled to the fourth valve stem.
[0126] 25. The inflation manifold of clause 24, further comprising a third normally-closed one-way valve disposed in the third valve stem so as to prevent fluid from flowing from the manifold when closed; a fourth normally-closed one-way valve disposed in the fourth valve stem so as to prevent fluid from flowing from the manifold when closed; the first tire pressure monitor having a first actuator disposed so as to open the third normally closed valve when the first tire pressure monitor is coupled to the third valve stem; and the second tire pressure monitor having a second actuator disposed so as to open the fourth normally closed valve when the second tire pressure monitor is coupled to the fourth valve stem.
[0127] 26. The inflation manifold of clause 1, further comprising a first tire pressure sensor disposed in the first fluid channel; and a second tire pressure sensor disposed in the second fluid channel.
[0128] 27. The inflation manifold of clause 20, further comprising a first cover sealing the first tire pressure sensor in the first port; and a second cover sealing the second tire pressure sensor in the second port.
[0129] 28. The inflation manifold of clause 20, wherein the first tire pressure sensor is sealed in the first port and the second tire pressure sensor is sealed in the second port, each by a sealing compound.
[0130] 29. The inflation manifold of clause 28, the sealing compound comprising epoxy.
[0131] 30. The inflation manifold of clause 20, further comprising a visual display configured to display first tire pressure data from the first tire pressure sensor, second tire pressure data from the second tire pressure sensor, or both the first tire pressure data and the second tire pressure data.
[0132] 31. The inflation manifold of clause 17, the annular seal comprising an o-ring.
[0133] 32. The inflation manifold of clause 11, further comprising a bottom face configured for removably mounting to a hub cap having one or more vents, the bottom face comprising pressure-relief channels disposed so as to permit fluid to flow from the vents to atmosphere when the inflation manifold is mounted to the hubcap.
[0134] 33. The inflation manifold of clause 32, further comprising a shroud mounted to the bottom surface so as to seal the vents when the inflation manifold is mounted to the hubcap.
[0135] 34. The inflation manifold of clause 33, wherein the shroud is flexible so as to allow pressurized fluid to escape the vents.
[0136] 35. A wheel-end assembly having a hub, a first pneumatic tire and a second pneumatic tire, the wheel-end assembly comprising an inflation manifold comprising a first fluid channel having a first inlet and a first outlet, and a second fluid channel having a second inlet and a second outlet; and a first fluid conduit providing sealed fluid communication between first inlet and the first pneumatic tire; and a second fluid conduit providing sealed fluid communication between second inlet and the second pneumatic tire.
[0137] 36. The wheel end assembly of clause 35, wherein the inflation manifold is mounted to the hub.
[0138] 37. The wheel end assembly of clause 35, wherein the inflation manifold is mounted to a hubcap mounted to the hub.
[0139] 38. The wheel end assembly of clause 35, wherein the inflation manifold is mounted to a bracket mounted to the hub.
[0140] 39. The wheel end assembly of clause 35, wherein the first fluid conduit is removably coupled to the first inlet and the first pneumatic tire, and the second fluid conduit is removably coupled to the second inlet and the second pneumatic tire.
[0141] 40. The wheel end assembly of clause 35, wherein the first fluid conduit is removably coupled to a first valve stem of the first pneumatic tire, and the second fluid conduit is removably coupled to a second valve stem of the second pneumatic tire, the first valve stem and the second valve stem each having an automobile tire valve disposed therein.
[0142] 41. The wheel end assembly of clause 40, wherein the first fluid conduit and the second fluid conduit each comprise a post configured to open the automobile tire valve when the conduit is coupled to the valve stem.
[0143] 42. The wheel end assembly of clause 35, the inflation manifold further comprising a first normally-closed one-way valve disposed at the first outlet so as to prevent fluid from flowing from the manifold when closed; and a second normally-closed one-way valve disposed at the second outlet so as to prevent fluid from flowing from the manifold when closed.
[0144] 43. The wheel end assembly of clause 42, wherein the first normally-closed one-way valve and the second normally-closed one-way valve are automobile tire valves.
[0145] 44. The wheel end assembly of clause 42, further comprising a first valve stem disposed in the first outlet, the first normally-closed one-way valve being disposed in the first valve stem; and a second valve stem disposed in the second outlet, the second normally-closed one-way valve being disposed in the second valve stem.
[0146] 45. The wheel end assembly of clauses 35, 42, 43 or 44, further comprising a first fitting disposed in the first inlet and being configured for removable coupling to a first fluid conduit, and a second fitting disposed in the second inlet and being configured for removable coupling to a second fluid conduit.
[0147] 46. The wheel end assembly of clause 45, the first fitting comprising a first actuator post; and the second fitting comprising a second actuator post.
[0148] 47. The wheel end assembly of clause 45 further comprising a first fitting valve disposed in the first fitting, the first fitting valve comprising a normally-closed one-way valve and disposed so as to prevent fluid from flowing from the manifold when closed; and a second fitting valve disposed in the second fitting, the second fitting valve comprising a normally-closed one-way valve and disposed so as to prevent fluid from flowing from the manifold when closed.
[0149] 48. The wheel end assembly of clause 47, the first fitting valve comprising a first actuator post; and the second fitting valve comprising a second actuator post.
[0150] 49. The wheel end assembly of clause 48, the first fitting valve comprising a first fluid channel disposed so as to allow fluid to flow through the first fluid channel when the first fitting valve is open; and the second fitting valve comprising a second fluid channel disposed so as to allow fluid to flow through the second fluid channel when the second fitting valve is open.
[0151] 50. The wheel end assembly of clause 35, the inflation manifold further comprising a top face, a bottom face and one or more side faces, the first inlet and second inlet each being disposed on one of the one or more side faces, and the first outlet and second outlet each being disposed on the top face.
[0152] 51. The wheel end assembly of clause 50, the bottom face being5 configured for removably mounting to a hubcap.
[0153] 52. The wheel end assembly of clause 50, the bottom face being configured for removably mounting to bracket mounted to a hub.
[0154] 53. The wheel end assembly of clause 35, the inflation manifold further comprising a top face, a bottom face and one or more side faces, the first inlet, second inlet, first outlet and second outlet each being disposed on one of the one or more side faces.
[0155] 54. The wheel end assembly of clauses 50 or 53, the inflation manifold being in the shape of a cylinder.
[0156] 55. The wheel end assembly of clauses 50 or 53, the inflation manifold being in the shape of a cube.
[0157] 56. The wheel end assembly of clause 35 further comprising one or more faces, the first inlet, second inlet, first outlet and second outlet each being disposed on one of the one or more side faces.
[0158] 57. The wheel end assembly of clause 54, the inflation manifold further comprising a groove disposed circumferentially around the cylinder curve; a radial fluid channel extending from the groove to the central axis of the inflation manifold; an axial fluid channel extending from the bottom face to the radial fluid channel; and an annular seal disposed in the groove so as to seal the radial fluid channel, the annular seal configured to flex out of the groove to relieve fluid pressure in the radial fluid channel.
[0159] 58. The wheel end assembly of clause 35, the first fluid channel comprising a first port, and the second fluid channel comprising a second port.
[0160] 59. The wheel end assembly of clause 58, further comprising a first tire pressure sensor disposed at the first port; and a second tire pressure sensor disposed at the second port.
[0161] 60. The wheel end assembly of clause 59, wherein the first tire pressure sensor is disposed in the first port and the second tire pressure sensor is disposed in the second port.
[0162] 61. The wheel end assembly of clause 59, wherein the first tire pressure sensor is removably disposed at the first port and the second tire pressure sensor is removably disposed at the second port.
[0163] 62. The wheel end assembly of clause 59, wherein the first tire pressure sensor is removably coupled to the first port and the second tire pressure sensor is removably coupled to the second port.
[0164] 63. The wheel end assembly of clause 58 further comprising a first normally-closed one-way valve disposed at the first outlet so as to prevent fluid from flowing from the manifold when closed; a second normally-closed one-way valve disposed at the second outlet so as to prevent fluid from flowing from the manifold when closed; a first valve stem disposed in the first outlet, the first normally-closed one-way valve being disposed in the first valve stem; a second valve stem disposed in the second outlet; a third valve stem disposed in the first port; and a fourth valve stem disposed in the second port.
[0165] 64. The wheel end assembly of clause 63, further comprising a first tire pressure sensor coupled to the third valve stem; and a second tire pressure sensor coupled to the fourth valve stem.
[0166] 65. The wheel end assembly of clause 64, further comprising a third normally-closed one-way valve disposed in the third valve stem so as to prevent fluid from flowing from the manifold when closed; a fourth normally-closed one-way valve disposed in the fourth valve stem so as to prevent fluid from flowing from the manifold when closed; the first tire pressure monitor having a first actuator disposed so as to open the third normally closed valve when the first tire pressure monitor is coupled to the third valve stem; and the second tire pressure monitor having a second actuator disposed so as to open the fourth normally closed valve when the second tire pressure monitor is coupled to the fourth valve stem.
[0167] 66. The wheel end assembly of clause 35, further comprising a first tire pressure sensor disposed in the first fluid channel; and a second tire pressure sensor disposed in the second fluid channel.
[0168] 67. The wheel end assembly of clause 60, further comprising a first cover sealing the first tire pressure sensor in the first port; and a second cover sealing the second tire pressure sensor in the second port.
[0169] 68. The wheel end assembly of clause 60, wherein the first tire pressure sensor is sealed in the first port and the second tire pressure sensor is sealed in the second port, each by a sealing compound.
[0170] 69. The wheel end assembly of clause 68, the sealing compound comprising epoxy.
[0171] 70. The wheel end assembly of clause 57, the annular seal comprising an o-ring.
[0172] 71. The wheel end assembly of clause 35, further comprising a bottom face configured for removably mounting to a hub cap having one or more vents, the bottom face comprising pressure-relief channels disposed so as to permit fluid to flow from the vents to atmosphere when the inflation manifold is mounted to the hubcap.
[0173] 72. The wheel end assembly of clause 71, further comprising a shroud mounted to the bottom surface so as to seal the vents when the inflation manifold is mounted to the hubcap.
[0174] 73. The wheel end assembly of clause 72, wherein the shroud is flexible so as to allow pressurized fluid to escape the vents.
[0175] 74. An apparatus comprising a hose support block; an air hose coupled at one end to a pneumatic tire valve stem and at a second end to the hose support block; and a tire pressure monitoring system sensor coupled to the air hose so as to sense the pressure of fluid in the air hose.
[0176] 75. The apparatus of clause 74, the hose support block comprising a dummy component of an automatic tire inflation system.
[0177] 76. The apparatus of clause 75, the dummy component comprising a rotary fluid connection housing.
[0178] 77. The apparatus of clause 74, the air hose being in free fluid communication with pressurized fluid in the pneumatic tire.
[0179] 78. The apparatus of clause 77, the air hose comprising a TPMS sensor.
[0180] 79. The apparatus of clause 77, the air hose comprising an auxiliary port.
[0181] 80. The apparatus of clause 79 further comprising a TPMS sensor coupled to the auxiliary port.
[0182] 81. The apparatus of clause 79 further comprising a pressure relief valve coupled to the auxiliary port.
[0183] 82. The apparatus of clause 79, the auxiliary port being configured to couple to a fluid pressure source so as to permit pressurization of the pneumatic tire.
[0184] 83. The apparatus of clause 74 configured for mounting to a hubcap.
[0185] 84. The apparatus of clause 74 configured for mounting to a hubcap.
[0186] 85. An apparatus comprising a hose support block and a first TPMS sensor mounted to the hose support block, the first TPMS sensor comprising a first fluid conduit having a first end configured to removably couple to a first air hose and a second end having a first one-way check valve disposed therein, the first fluid conduit further comprising a first fluid port disposed so as to place the TPMS sensor in sensing fluid communication with fluid in the first fluid conduit.
[0187] 86. The apparatus of clause 85, further comprising a second TPMS sensor mounted to the hose support block, the second TPMS sensor comprising a second fluid conduit having a first end configured to removably couple to a second air hose and a second end having a second one-way check valve disposed therein, the second fluid conduit further comprising a second fluid port disposed so as to place the TPMS sensor in sensing fluid communication with fluid in the second fluid conduit.
[0188] 87. The apparatus of clause 86, the hose support block comprising a bracket configured for mounting to a wheel end.
[0189] 88. The apparatus of clause 87, the bracket being configured for mounting to a wheel-end hub on the axis of hub rotation.
[0190] 89. A tire pressure sensor comprising a tire pressure gauge configured for mounting to a tire valve, the tire pressure gauge comprising a visual tire pressure indicator; and a tire pressure monitoring system (TPMS) sensor in sealing fluid communication with the flow-through tire pressure gauge.
[0191] 90. The sensor of clause 89, the tire pressure gauge being a flow-through tire pressure gauge comprising a visual pressure indicator responsive to tire pressure; and a fluid channel in fluid communication with the visual pressure indicator, the fluid channel having a first end and a second end, the first end having a tire valve sealingly disposed therein, and the second end having a post configured to hold open the valve of a tire stem when mounted thereto.
[0192] 91The sensor of clause 90, wherein the visual pressure indicator is digital.
[0193] 92. The sensor of clause 89, the tire pressure gauge comprising a flow-through tire pressure gauge having an auxiliary port, and the TPMS sensor being coupled to the auxiliary port.
[0194] 93. The sensor of clause 89 comprising a fluid channel having a first end and a second end, the first end having a tire valve sealingly disposed therein, and the second end having a post configured to hold open the valve of a tire stem when mounted thereto, the tire pressure gauge and the TPMS sensor each being in sealing fluid communication with the fluid channel between the first end and the second end thereof.
[0195] 94. The sensor of clause 93, the tire pressure gauge comprising a visual pressure indicator responsive to tire pressure.
[0196] 95. The sensor of clause 94, wherein the visual pressure indicator is digital.
[0197] 96. A tire valve stem comprising a fluid channel having a first end and a second end, the first end having a tire valve sealingly disposed therein, and the second end being configured for mounting to a tire rim; a tire pressure gauge comprising a visual tire pressure indicator and being in sealing fluid communication with the fluid channel between the first end and the second end thereof; and a tire pressure monitoring system (TPMS) sensor in sealing fluid communication with the fluid channel.
[0198] 97. The tire valve stem of clause 96, the tire pressure gauge being a flow-through tire pressure gauge having the fluid channel extending therethrough.
[0199] 98. The tire valve stem of clause 97, the fluid channel having an auxiliary port, and the TPMS sensor being coupled to the auxiliary port.
[0200] 99. The tire valve stem of clause 98, the tire pressure gauge comprising a visual pressure indicator responsive to tire pressure.
[0201] 100. The tire valve stem of clause 99, wherein the visual pressure indicator is digital.
[0202] 101. The tire valve stem of clause 96, the tire pressure monitoring system sensor being in sealing fluid communication with the fluid channel between the first end and the second end thereof.
[0203] 102. The tire valve stem of clause 96, the tire pressure monitoring system sensor being in sealing fluid communication with the fluid channel at the second end thereof
[0204] Although the present disclosure and its advantages have been described in detail, it should be understood that various changes, substitutions and alterations can be made herein without departing from the invention as defined by the appended claims. Moreover, the scope of the present application is not intended to be limited to the particular embodiments of the process, machine, manufacture, composition, or matter, means, methods and steps described in the specification. As one will readily appreciate from the disclosure, processes, machines, manufacture, compositions of matter, means, methods, or steps, presently existing or later to be developed that perform substantially the same function or achieve substantially the same result as the corresponding embodiments described herein may be utilized. For example, although the disclosed apparatus, systems and methods may be described with reference to a manual or manually-activated pressure reduction valve, an electric valve or other automatic electronic or mechanical valve may be used to accomplish relatively rapid reduction of air pressure. Accordingly, the appended claims are intended to include within their scope such processes, machines, manufacture, compositions of matter, means, methods, systems or steps.