EXHAUST SYSTEM HAVING HYBRID COOLING ARRANGEMENT
20170284249 · 2017-10-05
Assignee
Inventors
Cpc classification
F01P3/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2060/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B37/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2590/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/046
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/1805
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/1855
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/12
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
F01N3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B37/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P3/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An exhaust system is disclosed for a use with an engine. The exhaust system may have a plurality of manifold sections, each being connected to an adjacent one of the plurality of manifold sections and thereby forming an exhaust manifold. The exhaust system may also have a plurality of elbow-shaped coolant adapters, each being configured to connect a corresponding one of the plurality of manifold sections to a corresponding cylinder head of the engine and having a coolant jacket formed therein. The exhaust system may further have a heat shield formed around the exhaust manifold.
Claims
1. A coolant adapter for an engine, comprising: an elbow-shaped conduit having an exhaust inlet connectable to a cylinder head of the engine and an exhaust outlet connectable to an exhaust manifold of the engine; and a jacket formed around at least a portion of the elbow-shaped conduit.
2. The coolant adapter of claim 1, wherein axes of the exhaust inlet and outlet are oriented at an interior angle of about 60-120° relative to each other
3. The coolant adapter of claim 2, wherein the interior angle is about 90°.
4. The coolant adapter of claim 1, wherein the jacket includes a coolant inlet having an axis generally parallel with an axis of the exhaust inlet.
5. The coolant adapter of claim 4, wherein the coolant inlet is formed within an outboard side wall of the jacket and connectable with a coolant supply in the cylinder head.
6. The coolant adapter of claim 4, wherein the jacket further includes a coolant outlet having an axis generally orthogonal to axes of both the exhaust inlet and outlet.
7. The coolant adapter of claim 4, further including a mounting flange located at a downstream end of the elbow-shaped conduit, the mounting flange having: the exhaust outlet centrally located therein; and a concentric coolant outlet in communication with the jacket.
8. An exhaust system for an engine, comprising: a plurality of manifold sections, each being connected to an adjacent one of the plurality of manifold sections and thereby forming an exhaust manifold; a plurality of elbow-shaped coolant adapters, each being configured to connect a corresponding one of the plurality of manifold sections to a corresponding cylinder head of the engine and having a coolant jacket formed therein; and a heat shield formed around the exhaust manifold.
9. The exhaust system of claim 8, wherein: the coolant jacket is a first coolant jacket; and each of the plurality of manifold sections includes a second coolant jacket formed therein that is in fluid communication with the first coolant jacket.
10. The exhaust system of claim 8, further including a coolant manifold configured to receive coolant from the coolant jacket via an inboard side of each of the plurality of elbow-shaped coolant adapters.
11. The exhaust system of claim 8, further including a coupling configured to direct coolant from the corresponding cylinder head into the coolant jacket via an outboard side of each of the plurality of elbow-shaped coolant adapters.
12. The exhaust system of claim 8, wherein each of the plurality of elbow-shaped coolant adapters has an interior angle of about 90°.
13. The exhaust system of claim 8, wherein the coolant jacket includes a coolant inlet having an axis generally parallel with an exhaust inlet of each of the plurality of elbow-shaped coolant adapters.
14. The exhaust system of claim 8, further including an exhaust runner connecting each of the plurality of manifold sections to each of the plurality of elbow-shaped coolant adapters.
15. The exhaust system of claim 8, wherein each of the plurality of elbow-shaped coolant adapters further includes a first mounting flange located at an end thereof and configured to engage a corresponding second mounting flange on each of the plurality of manifold sections, the first mounting flange having: an exhaust outlet centrally located therein; and a concentric coolant outlet formed around the exhaust outlet.
16. The exhaust system of claim 15, wherein the heat shield is supported by at least one of the first and second mounting flanges.
17. The exhaust system of claim 16, wherein the heat shield encompasses the exhaust manifold on at least three sides.
18. The exhaust system of claim 16, wherein the heat shield encompasses the exhaust manifold on four sides.
19. A power system, comprising: an engine having a plurality of cylinder heads; a plurality of manifold sections configured to connect with each other and thereby form an exhaust manifold, each of the plurality of manifold sections having an integral exhaust runner extending from an annular wall; a plurality of a coolant adapters, each configured to connect a corresponding integral exhaust runner to a corresponding one of the plurality of cylinder heads, and having a jacket formed therein; a plurality of couplings, each configured to connect a coolant outlet of the corresponding one of the plurality of cylinder heads with the jacket via an outboard side of a corresponding one of the plurality of coolant adapters; a coolant manifold configured to receive coolant from the plurality of coolant adapters via an inboard side of each of the plurality of coolant adapters; a heat shield formed around the exhaust manifold; and a turbocharger driven by exhaust in the exhaust manifold to pressurize air directed into the engine.
20. The power system of claim 19, wherein: the heat shield is supported by the plurality of a coolant adapters; and the heat shield encompasses the exhaust manifold on at least three sides.
Description
BRIEF DESCRIPTION OF THE DRAWING
[0011]
[0012]
[0013]
DETAILED DESCRIPTION
[0014]
[0015] As shown in
[0016] Each exhaust manifold 30 may be an assembly of multiple manifold sections 34, which are joined end-to-end in an axial direction. As shown in
[0017] Depending on an intended application of engine 12, a skin temperature of exhaust system 14 may need to be lowered in order for engine 12 to be compliant with associated regulations. In the embodiment of
[0018] Heat shield 46 may embody any type of heat shield known in the art. In disclosed example, heat shield 46 is a rigid-type of shield. However, it is contemplated that heat shield 46 could be a flexible or a hybrid type of shield if desired. Heat shield 46 may consist of any number of layers (e.g., an outer layer, an inner layer, and one or more intermediate layers) made from any type of material. If multiple layers are included, an inner layer may be fabricated from a reflective material (e.g., foil), an outer layer may be fabricated from a more durable and/or flexible material (e.g., silicon), while any intermediate layer(s) may be fabricated from an insulative material (e.g., a porous or corrugated material).
[0019] Heat shield 46 may be installed in sections (e.g., one section per one or more manifold sections 34) and/or in parts (e.g., an inside part and an outside part, a top part and a bottom part, individual walls, etc.), and supported by any surrounding structure (e.g., by manifold sections 34, by mounting flanges 38 and/or 44, by dedicated support structure—not shown, etc.). In some embodiments, heat shield 46 may completely surround each manifold section 34 (e.g., on all four sides—top, bottom, inboard side, outboard side). However, in other embodiments, heat shield 46 may not be required at a location below central conduit 36 (i.e., the bottom may be omitted). Heat shield 46 may terminate at about the distal end of runners 37 (i.e., only be used to lower a temperature of manifold sections 34), as it may be too difficult and/or geometrically complex to install heat shield 46 at lower locations (i.e., locations closer to engine block 16 and between cylinder banks 26 and 28—referring to
[0020] Coolant adapter 48 may function to connect runner 37 of manifold section 34 to a corresponding cylinder head 22 (referring to
[0021] A coupling 70 may be used to couple coolant inlet 58 of coolant adapter 48 with a supply of coolant. In the disclosed example, the supply of coolant is cylinder head 22. In particular, coupling 70 may be configured to connect an outlet port located at an upper surface of cylinder head 22 with coolant inlet 58. In this example, coupling 70 is an elbow having mounting flanges located at opposing ends. In other examples, however, coupling 70 could have a different shape and/or embody a tube, a flexible hose, or a differently type of coupling, if desired. The coolant received from cylinder head 22 may have already passed through engine 12 and absorbed heat therefrom. A temperature of this coolant, however, may still be low enough to provide an acceptable skin temperature at the associated location. Thereafter, the coolant may exit adapter 48 to join with coolant exiting other adjacent adapters 48 and flow through a coolant manifold 72 to a heat exchanger (e.g., a radiator—not shown) where heat in the coolant may be dissipated to the environment before the coolant is returned to engine 12.
[0022] An alternative embodiment of exhaust system 14 is illustrated in
INDUSTRIAL APPLICABILITY
[0023] The disclosed exhaust system may be implemented into any power system application where maximum engine skin temperatures are regulated. The disclosed exhaust system may reduce a skin temperature of engine 12 by way of a unique combination of coolant jackets and heat shields. In addition, the disclosed combinations may allow for assembly simplicity and lower costs, without reducing an efficiency of engine 12. In some embodiments, for example in engines employing exhaust recirculation for lower emissions, the disclosed system may also help to reduce a temperature of the exhaust prior to recirculation of the exhaust back to an inlet of the engine.
[0024] It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed exhaust system. Other embodiments will be apparent to those skilled in the art from consideration of the specification and practice of the disclosed exhaust system. It is intended that the specification and examples be considered as exemplary only, with a true scope being indicated by the following claims and their equivalents.