The present application discloses catalyst housings and catalyst silencer housings that include various features for modularity and for servicing and securing catalyst elements, spacers and filter elements.
In the present disclosure, certain terms have been used for brevity, clearness, and understanding. No unnecessary limitations are to be implied therefrom beyond the requirement of the prior art because such terms are used for descriptive purposes only and are intended to be broadly construed. The different apparatuses and method steps described herein may be used alone or in combination with other apparatuses and method steps. It is to be expected that various equivalents, alternatives and modifications are possible.
The inlet 12 and outlet 16 are shown as cylindrical tubes, however, any other shape suitable for conveying exhaust gas from upstream to downstream along the direction of arrows 24, 26 can suffice. The inlet 12 and outlet 16 include sensor ports 28 for conventional temperature sensors, back pressure sensors, oxygen sensors, and/or the like for measuring characteristics of inlet exhaust gas and outlet exhaust gas. In an alternative arrangement, the sensor ports 28 could be located on or in the housing body 14.
The housing body 14 encloses a flow dispersion device 30 (
The catalysts 32, 34 are circular in cross section, however the housing 10 could be designed to accommodate catalysts having various other shapes and sizes. The particular example shown is designed to removably contain two catalysts. However, it will be recognized that the housing 10 could be designed to removably contain one or three or more catalysts. Suitable insulation can also be disposed in the housing body 14 and around the catalysts 32, 34.
An access door 36 is provided on the housing body 14 and in the example shown is a flat panel having a handle 38. The access door 36 is attached to the housing body 14 in a sealed, removable manner. In the example shown, the access door 36 is removably attached to a flange surface 40 on the housing 14. The access door 36 and flange surface 40 both have a series of slots 42 and holes 44 that are aligned when the access door 36 is properly mated with the flange surface 40. The slots 42 are open at the outer edges of the access door 36 and flange surface 40. A series of bolt 45 connections are fed through the aligned slots 42 and holes 44 and tightened to connect the access door 36 and flange surface 40 in a sealed manner. In the preferred arrangement, a gasket seal 46 is sandwiched between the mated surfaces of the access door 36 and flange surface 40 to prevent exhaust gas escape from inside of the housing body 14. The bolt 45 connections in the slots 42 facilitate an easy removal of door hardware. That is, it is only necessary to loosen the bolts 45 and associated nuts 47 and slide the same outwardly out of the open end of the slots 42 without completely separating the bolts 45 from the nuts 47. The bolt 45 connections in the holes 44 provide stability to the mated connection. In another alternative embodiment, clamps could be used to facilitate a stable connection with easy separation of the access door 36 from the flange surface 40. The access door arrangement thus provides a flat sealing interface that is less subject to breakdown, thus resulting in less external leakage of exhaust gas. The durable arrangement of the access door 36 connection to the housing body 14 provides easy access to remove and repair or replace the catalysts 32, 34 during the operational life of the housing 10.
Each catalyst 32, 34 includes a catalyst body 48 surrounded by a sleeve 50 or cylinder of sheet metal. Each catalyst 32, 34 aligns with the other catalyst to form a sealing interface preventing escape of exhaust gas radially outwardly towards, for example, the access door 36. This can be accomplished by different sealing arrangements. In the example shown, upstream and downstream rings 52, 54 are welded onto the catalyst such as onto the sleeve 50. The catalysts 32, 34 are inserted into the body 14 via the access door 36 and aligned such that the downstream ring 54 on the secondary catalyst 34 aligns with the upstream ring 52 on the primary catalyst 32 so as to form a mating (sealing) surface therebetween. In one example, a sealing gasket 53 is sandwiched between the mated surfaces of the rings 52, 54. In addition, the downstream ring 54 of the primary catalyst 32 mates with a sealing surface 56 on the inside of the housing body 14. A sealing gasket 53 can be sandwiched between the mated surfaces 54, 56. Alternative arrangements can be employed to achieve the noted sealing function. For example, upstream and downstream sealing mechanisms on each catalyst 32, 34 can include structural features (not shown) to create a tortuous flow path to hinder the escape of exhaust gas radially outwardly away from the catalysts 32, 34.
A plurality of catalyst retention bolts 58 and associated jamb nuts 60 are provided in an external surface of the housing body 14. In the example shown, the retention bolts 58 and associated jamb nuts 60 are provided on the upstream end or inlet end of the housing body 14, however in an alternative arrangement, could be provided on the downstream end or outlet end of the housing body 14. In the example shown, three retention bolts 58 and associated jamb nuts 60 are provided, however any number of these devices could be utilized to promote effective sealing within the housing 10 as herein described. The retention bolts 58 connect to the housing body 14 via a threaded connection 62 in such a manner that the distal end 64 of each retention bolt 58 engages with the upstream ring 52 on the secondary catalyst 34 and applies an axial force along the direction of arrow 66 (
Catalyst alignment features are provided in the housing body 14 to promote alignment of the respective catalysts 32, 34 and alignments of the associated upstream and downstream rings 52, 54. In the example shown, the alignment features include a plurality of lateral ribs 68 extending axially inside the housing body 14. These ribs can consist of, for example, steel spacer bars.
It will thus be understood that the catalysts 32, 34 are easily removed and replaced within the housing body 14 via the access door 36. Alternatively, it is possible to use only a single catalyst with an associated spacer device that is shaped like a catalyst. Although the example shows two catalysts aligned side by side, it is possible to construct a housing body 14 capable of holding only one catalyst element, or three or more catalyst elements in series. Alternatively, it is also possible to use only a single catalyst with an associated filter element, shaped like a catalyst. Although the example shows two catalysts aligned side by side, it is possible to construct a housing body 14 capable of holding a larger number of catalysts, spacers, and filter elements in combination.
The catalyst housing 10 provides an improved modular device having high quality preventative leak performance characteristics to, for example, minimize exhaust gas leakage and/or bypass of the catalyst units. The example shown is suitable for use in robust, high horsepower systems, but can also be used in relative simple, low horsepower systems.
Referring to
The embodiments shown in
This application relates to and claims priority from pending U.S. Provisional Patent Application No. 61/117,855, which is incorporated herein by reference.
Number | Date | Country | |
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61117855 | Nov 2008 | US |