Exhaust discharge system
12123332 ยท 2024-10-22
Assignee
Inventors
- Saad HASAN (Naperville, IL, US)
- Gerald W. GAVIN (Big Rock, IL, US)
- Daniel Allen Hatfield (Rochelle, IL, US)
- Jingshu WU (Katy, TX, US)
Cpc classification
F01N2470/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E02F9/0841
FIXED CONSTRUCTIONS
F01N2470/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2590/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E02F9/0866
FIXED CONSTRUCTIONS
F01N2470/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01N13/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23J11/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An exhaust discharge system is disclosed. The exhaust discharge system comprises an exhaust stack including a first conduit and a second conduit. The first conduit defines a first flow passageway and arranged around a first longitudinal axis. The first conduit including a skirt portion and a body portion disposed downstream of the skirt portion, and the skirt portion is oriented to slope outward from the body portion. The second conduit is disposed downstream of the first conduit. The second conduit defines a second flow passageway and is arranged around a second longitudinal axis, the second conduit includes a sidewall and an exit port, the exit port having an exit-port cross-section, wherein the exit-port cross-section is oblong in shape. The second longitudinal axis is disposed at an intersection angle to the first longitudinal axis, the intersection angle in a range of 125 to 150. The exhaust stack is configured to convey treated exhaust from the skirt portion to the exit port.
Claims
1. An exhaust discharge system comprising: an exhaust stack including a first conduit defining a first flow passageway and arranged around a first longitudinal axis, the first conduit including a skirt portion and a body portion disposed downstream of the skirt portion, the skirt portion oriented to slope outward from the body portion, and wherein the skirt portion includes a base configured to be mounted on an outside surface of a housing that is configured to at least partially enclose an engine of a machine; a second conduit disposed downstream of the first conduit, the second conduit defining a second flow passageway and arranged around a second longitudinal axis, the second conduit including a sidewall and an exit port, the exit port having an exit-port cross-section, wherein the exit-port cross-section is oblong in shape, and wherein the exhaust stack has a junction at which the second conduit intersects the first conduit, wherein further a first length of the second conduit from the exit port to the junction is greater than a height of the first conduit from the base to the junction; wherein the second longitudinal axis is disposed at an intersection angle to the first longitudinal axis, the intersection angle in a range of 125 to 150; and wherein the exhaust stack is configured to convey treated exhaust from the skirt portion to the exit port.
2. The exhaust discharge system of claim 1, wherein the exit port has a perimeter that is oval shaped.
3. The exhaust discharge system of claim 1, wherein the sidewall of the second conduit intersects the first conduit at the intersection angle.
4. The exhaust discharge system of claim 1, wherein the second conduit is a cylinder and the junction encircles the second conduit.
5. The exhaust discharge system of claim 1, wherein the exit port has a perimeter defined by the sidewall.
6. The exhaust discharge system of claim 1, wherein the exit port is oriented on the machine to emit exhaust toward a rear of the machine.
7. A method of assembling an exhaust discharge system for a machine, the exhaust discharge system including an exhaust stack having a first conduit and a second conduit, the first conduit defining a first flow passageway and arranged around a first longitudinal axis, the first conduit including a skirt portion and a body portion, the skirt portion oriented to slope outward from the body portion, wherein the skirt portion includes a base configured to be mounted on an outside surface of a housing that is configured to at least partially enclose the engine of the machine, the second conduit defining a second flow passageway downstream of the first flow passageway and arranged around a second longitudinal axis, the second conduit including a sidewall and an exit port, wherein the exhaust stack has a junction at which the second conduit intersects the first conduit, wherein further a first length of the second conduit from the exit port to the junction is greater than a height of the first conduit from the base to the junction, the exit port having an exit-port cross-section, wherein the exit-port cross-section is oblong in shape, the second longitudinal axis is disposed at an intersection angle to the first longitudinal axis in a range of 125 to 150, and the exhaust stack is configured to convey treated exhaust from the skirt portion to the exit port, the method comprising: mounting the exhaust stack on the machine to at least partially enclose an engine of the machine.
8. The method according to claim 7, the method including: orienting the exit port on the machine to emit exhaust toward a rear of the machine.
9. An exhaust system disposed on a machine having an engine and a housing that at least partially encloses the engine, the exhaust system comprising: an aftertreatment apparatus configured to receive exhaust from the engine and to output a treated exhaust to an exhaust stack; the exhaust stack includes a first conduit and a second conduit; the first conduit defining a first flow passageway and arranged around a first longitudinal axis, the first conduit including a skirt portion and a body portion disposed downstream of the skirt portion, the skirt portion oriented to slope outward from the body portion, the skirt portion including a base disposed on the housing; a second conduit disposed downstream of the first conduit, the second conduit defining a second flow passageway and arranged around a second longitudinal axis, the second conduit including a sidewall and an exit port, the exit port having an exit-port cross-section, wherein the exit-port cross-section is oblong in shape, and wherein the exhaust stack has a junction at which the second conduit intersects the first conduit, wherein further a first length of the second conduit from the exit port to the junction is greater than a height of the first conduit from the base to the junction; wherein the second longitudinal axis is disposed at an intersection angle to the first longitudinal axis, the intersection angle in a range of 125 to 150; and wherein the exhaust stack is configured to convey the treated exhaust from the aftertreatment apparatus to the exit port.
10. The exhaust system of claim 9, wherein the exit port has a perimeter that is oval shaped.
11. The exhaust system of claim 9, wherein the sidewall of the second conduit intersects the first conduit at the intersection angle.
12. The exhaust system of claim 9, wherein the second conduit is a cylinder and the junction encircles the second conduit.
13. The exhaust system of claim 9, wherein the exit port has a perimeter defined by the sidewall.
14. The exhaust system of claim 9, wherein the exit port is oriented on the machine to emit the exhaust toward a rear of the machine.
15. The exhaust system of claim 9, wherein the exhaust stack has a junction at which the second conduit intersects the first conduit, wherein the junction encircles the first conduit and is oriented to slope in an upward direction from below the exit port to an opposite side of the first conduit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(6) Reference will now be made in detail to specific embodiments or features, examples of which are illustrated in the accompanying drawings. Generally, corresponding reference numbers will be used throughout the drawings to refer to the same or corresponding parts, unless otherwise specified.
(7) The wheel loader 102 includes a rear portion 104 and a front portion 106. The rear portion 104 may include a cab assembly 108, a rear axle housing assembly 110, a power system 112 and drive train components (not shown) mounted to a rear frame 114. The rear wheels 116 may be mounted to the rear axle housing assembly 110.
(8) The front portion 106 of the machine 100 may include a front frame assembly 124 and a front axle housing assembly 126. A boom assembly 128 and a lift arm assembly 130 may be mounted on the front frame assembly 124. An implement 132 may be attached to the boom assembly 128 and to the lift arm assembly 130. The front wheels 134 may be mounted on the front axle housing assembly 126.
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(10) Referring now to
(11) The exhaust discharge system 138 may include an ejector tube 140 and an exhaust stack 142. The exhaust stack 142 is in fluid communication with the ejector tube 140. The ejector tube 140 is in fluid communication with the one or more aftertreatment apparatus 136 and is configured to receive the treated exhaust 190 from the one or more aftertreatment apparatus 136.
(12) The ejector tube 140 includes an inlet 144 and an outlet 146. The ejector tube 140 fluidly receives from one or more aftertreatment apparatus 136 treated exhaust 190 via the inlet 144. The ejector tube 140 is configured to convey the treated exhaust 190 from the inlet 144 to the outlet 146. The outlet 146 is disposed inside a skirt 148 portion of the exhaust stack 142. As best seen in
(13) The exhaust stack 142 (
(14) As shown in
(15) The second conduit 162 is disposed downstream of the first conduit 160. The second conduit 162 defines a second flow passageway 176 and may be arranged around (e.g., in one embodiment, the second conduit 162 may be centered on) a second longitudinal axis D. The second longitudinal axis D is disposed at an intersection angle to the first longitudinal axis C. The intersection angle is in the range of about 125 to about 150 as measured with one ray of the intersection angle extending toward the base 172 and the other extending toward the exit port 152. The second conduit 162 includes a sidewall 178 and the exit port 152. The second conduit 162 is in fluid communication with the atmosphere (around the machine 100) via the exit port 152 (in other words, the exit port 152 emits treated exhaust 190 to outside of the machine 100).
(16) The exit port 152 is disposed at the second end 158 of the exhaust stack 142 and has an exit-port cross-section 180 (see
(17) In an embodiment, the sidewall 178 (
(18) Also disclosed is a method of assembling an exhaust discharge system 138 for the machine 100. The method may comprise disposing the outlet 146 of the ejector tube 140 inside the skirt portion 148 of the exhaust stack 142 so that the outlet cross-section 150 is oriented at an outlet angle to a first horizontal plane, wherein the outlet angle is an acute angle in the range of 15 to 25. The method may further comprise mounting the exhaust stack 142 on the machine 100 (e.g., an outside surface 174 of the housing 122 (that at least partially encloses the engine 118)).
INDUSTRIAL APPLICABILITY
(19) In general, the foregoing disclosure finds utility in machines 100, especially earth moving machines. A new generations of power systems are being developed that provide improved engine performance in more space-efficient housings. Such engines often emit increased exhaust flow in which exhaust sound, flow and thermal temperatures must be managed to meet regulatory and commercial machine sound requirements.
(20) Disclosed herein is an exhaust discharge system 138 that streamlines the treated exhaust 190 flow from the ejector tube 140 to the exit port 152 of the exhaust stack 142. The exhaust discharge system 138 reduces regional pressure in the exhaust stack 142, reduces turbulence in the exhaust stack 142 and increases the velocity of the exiting treated exhaust 190 without the use of an air injector or the like. For example, the disclosed exhaust stack 142 is free of an air injector.
(21) Unless explicitly excluded, the use of the singular to describe a component, structure, or operation does not exclude the use of plural such components, structures, or operations or their equivalents. The use of the terms a and an and the and at least one or the term one or more, and similar referents in the context of describing the invention (especially in the context of the following claims) are to be construed to cover both the singular and the plural, unless otherwise indicated herein or clearly contradicted by context. The use of the term at least one followed by a list of one or more items (for example, at least one of A and B or one or more of A and B) is to be construed to mean one item selected from the listed items (A or B) or any combination of two or more of the listed items (A and B; A, A and B; A, B and B), unless otherwise indicated herein or clearly contradicted by context. Similarly, as used herein, the word or refers to any possible permutation of a set of items. For example, the phrase A, B, or C refers to at least one of A, B, C, or any combination thereof, such as any of: A; B; C; A and B; A and C; B and C; A, B, and C; or multiple of any item such as A and A; B, B, and C; A, A, B, C, and C; etc.
(22) From the foregoing, it will be appreciated that while only certain embodiments have been set forth for the purposes of illustration, alternatives and modifications will be apparent from the above description to those skilled in the art. These and other alternatives are considered equivalents and within the spirit and scope of this disclosure and the appended claims.