The present device relates to the storage and delivery of ammonia. Particularly, the device relates to a heating jacket for regulating and maintaining the heat around a main NH3 cartridge, which contains an ammonia-containing material capable of releasing gaseous ammonia for use in the selective catalytic reduction of NOx in the exhaust stream of a vehicle.
Compression ignition engines provide advantages in fuel economy, but produce both NOx and particulates during normal operation. New and existing regulations continually challenge manufacturers to achieve good fuel economy and reduce the particulates and NOx emissions. Lean-burn engines achieve the fuel economy objective, but the high concentrations of oxygen in the exhaust of these engines yields significantly high concentrations of NOx as well. Accordingly, the use of NOx reducing exhaust treatment schemes is being employed in a growing number of systems.
One such system is the direct addition of ammonia gas to the exhaust stream in conjunction with an aftertreatment device. It is an advantage to deliver ammonia directly in the form of a gas, both for simplicity of the flow control system and for efficient mixing of reducing agent, ammonia, with the exhaust gas. The direct use of ammonia also eliminates potential difficulties related to blocking of the dosing system, which are cause by precipitation or impurities, e.g., in a liquid-based urea solution. In addition, an aqueous urea solution cannot be dosed at a low engine load since the temperature of the exhaust line would be too low for complete conversion of urea to ammonia (and CO2).
Transporting ammonia as a pressurized liquid, however, can be hazardous if the container bursts caused by an accident or if a valve or tube breaks. In the case of using a solid storage medium, the safety issues are much less critical since a small amount of heat is required to release the ammonia and the equilibrium pressure at room temperature can be—if a proper solid material is chosen—well below 1 bar. Solid ammonia can be provided in the form of disks or balls loaded into the cartridge or canister. The cartridges are then loaded into a mantle or other storage structure and secured to the vehicle for use. Appropriate heat is applied to the cartridges, which then causes the ammonia-containing solid storage material to release its ammonia gas into an after-treatment device and the exhaust system of a vehicle, for example. Therefore, regulating and maintaining the heat around the cartridges is important for consistent and efficient release of ammonia into the exhaust stream, and more effective reduction of NOx. An efficient system requires that multiple cartridge system configurations be heated sequentially, with only one cartridge being actively heated at a time. Furthermore, it is desirable to provide heating to the cartridges during all vehicle operations. The present device provides these features. The present device also provides quick and easy access to the retained ammonia canisters for removal, repair, or inspection through use of a tool-less latching mechanism. The disclosed device is easy to use and relatively inexpensive to manufacture and install.
There is disclosed herein a device and method, each of which avoids the disadvantages of prior devices, systems and methods while affording additional structural and operating advantages.
Generally speaking, a heating device comprising a multi-layered heating jacket is disclosed, for securing and heating an ammonia-containing storage cartridge for use on a vehicle.
In one embodiment, the heating jacket comprises first and second complimentary adjacent sections defining an interior space for receiving an ammonia-containing cartridge, the sections aligning with one another along peripheral seams, a heating element disposed within the first and second sections, a locking mechanism for securing and releasing the first and second sections around the cartridge.
In another embodiment, the sections of the heating jacket comprise a plurality of layered materials, including an internal heated surface layer, a heating element sheet layer, an insulation layer and an outer shell.
A method for regulating a temperature applied to an ammonia-containing storage cartridge for use in the treatment of NOx in an exhaust stream, is described. The method comprises the steps of affixing a multi-layered heating jacket having an interior surface to a frame of a vehicle, placing an ammonia-containing material storage cartridge within the interior space of the heating jacket, providing a heating means within the heating jacket; and, regulating an activation temperature of the heating jacket and storage cartridge.
These and other aspects of the invention may be understood more readily from the following description and the appended drawings.
Appendix
Referring to
Referring to
The heating jacket 10 is typically comprised of two halves or sections, a first upper section 12 and a second lower section 14, the sections forming a clamshell-like structure. The sections 12, 14 fit together to define an interior space 16, where the canisters or cartridges (not shown) may be placed. In the illustrated embodiment, the jacket 10 is designed for surrounding an individual cartridge. However, it should be understood that a single jacket 10 may be designed to handle multiple cartridges.
As shown in
The first section 12 is secured to the second section 14 in a movable manner, using any typical securing device, such a hinge, bolts or screws, to allow insertion and removal of storage cartridges from the interior space 16. It should be understood that any form of movable attachment mechanism, which allows the sections to easily open apart from one another would be suitable in the present device. In an embodiment, the two sections are secured together using a tool-less locking mechanism. For example, as shown in
Heating of the cartridge within the heating jacket 10 may be accomplished through a use of a heating element (not shown), such as a resistive element which generates heat when an electrical current is passed through the element, or a conduit for a liquid, such as engine coolant. The heating element may be installed within the heating element sheet layer 20 part of the layered structure forming both sections 12, 14 of the jacket. Although not shown, it should be understood that the heating element is connected to a power source (not shown) and control device, such as an electronic control module (not shown) to control the amount of heat generated by the heating jacket, as well as the duration of heating. Similarly, the heating jacket 10 may include an integrated temperature detection device (thermistor) and pressure sensors (not shown) for sending appropriate signals to an electronic control module (not shown) for monitoring and controlling the heating element of the heating jacket, even controlling the sequential heating of multiple jackets in the system. In this manner, the heating can be controlled within predefined limits, such that it does not damage surrounding components or even the ammonia-containing material within the cartridges.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/US11/49334 | 8/26/2011 | WO | 00 | 9/30/2013 |
Number | Date | Country | |
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61469383 | Mar 2011 | US |