IMPEDANCE HEATED CONTINUOUS EMISSION MONITORING SYSTEM
20230016089 ยท 2023-01-19
Inventors
Cpc classification
F27B9/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B9/062
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F27B9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B9/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An impedance heated continuous emission monitoring system has a first terminal of an electric power source connected to an input end of a tube communicating an emissions stack with an emissions analyzer and a second terminal of the electric power source connected to an output end of the tube. An electric current produced by the electric power source flows through the tube and heats the tube by impedance. Heating the tube maintains the temperature of the emissions travelling through the tube from the stack to the emissions analyzer above a dew point temperature of the emissions.
Claims
1. An impedance heated continuous emission monitoring system comprising: an emissions analyzer; a tube, the tube having a length between an input end of the tube and an opposite output end of the tube; the input end of the tube being configured for communication with a source of emissions; the output end of the tube being configured for communication with the emissions analyzer; a source of electric power; a first cable, the first cable being connected between the source of electric power and the tube; and, a second cable, the second cable being connected between the source of electric power and the tube.
2. The impedance heated continuous emission monitoring system of claim 1, further comprising: the emissions analyzer being a gas analyzer.
3. The impedance heated continuous emission monitoring system of claim 1, further comprising: the tube being one tube of a multiple of tubes bundled together.
4. The impedance heated continuous emission monitoring system of claim 1, further comprising: the source of electric power being a transformer.
5. The impedance heated continuous emission monitoring system of claim 1, further comprising: the first cable being connected to one of the input end of the tube and the output end of the tube; and, the second cable being connected to the output end of the tube when the first cable is connected to the input end of the tube, and the second cable being connected to the input end of the tube when the first cable is connected to the output end of the tube.
6. An emissions monitoring system comprising: an emissions analyzer; a tubing system, the tubing system being configured for communicating with the emissions analyzer and with emissions; and a source of electric power delivering electric power to the tubing system and creating impedance heating of the tubing system that heats emissions passing through the tubing system to the emissions analyzer and keeps a temperature of the emissions above a dew point temperature of the emissions.
7. The emissions monitoring system of claim 6, further comprising: a stack, the stack containing the emissions; and the tubing system is configured for communicating with the stack.
8. The emissions monitoring system of claim 6, further comprising: the tubing system is constructed of a metallic material that is a heat conductor.
9. The emissions monitoring system of claim 8, further comprising: the tubing system is constructed of stainless steel.
10. The emissions monitoring system of claim 6, further comprising: the tubing system is a tube that has an unobstructed interior bore that extends through the tube.
11. The emissions monitoring system of claim 6, further comprising: the tubing system is a single tube.
12. The emissions monitoring system of claim 6, further comprising: the tubing system is a plurality of tubes arranged in a bundle.
13. The emissions monitoring system of claim 6, further comprising: the tubing system is a tube, the tube has an input end and an opposite output end, the input end of the tube is configured for communicating with a stack containing the emissions and the output end of the tube is configured for communicating with the emissions analyzer.
14. An emissions monitoring system comprising: an emissions analyzer; a tubing system, the tubing system having an input end and an opposite output end; the output end of the tubing system is configured for communicating with the emissions analyzer; the input end of the tubing system is configured for communicating with emissions; and a source of electric power delivering electric power to the tubing system and producing an electric current flow through the tubing system, the electric current flow through the tubing system creating impedance heating of the tubing system that heats emissions passing through the tubing system keeping the emissions above a dew point temperature of the emissions.
15. The emissions monitoring system of claim 14, further comprising: the tubing system is constructed of a metallic material that is a heat conductor.
16. The emissions monitoring system of claim 15, further comprising: the tubing system is constructed of stainless steel.
17. The emissions monitoring system of claim 14, further comprising: the tubing system is a tube that has an unobstructed interior bore that extends through the tube.
18. The emissions monitoring system of claim 14, further comprising: the tubing system is a single tube.
19. The emissions monitoring system of claim 14, further comprising: the tubing system is a plurality of tubes arranged in a bundle.
20. The emissions monitoring system of claim 14, further comprising: the tubing system is a tube, the tube has an input end and an opposite output end, the input end of the tube is configured for communicating with a stack containing the emissions and the output end of the tube is configured for communicating with the emissions analyzer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
[0017]
[0018] Corresponding reference numerals will be used throughout the several figures of the drawings.
DETAILED DESCRIPTION
[0019] The following detailed description illustrates the claimed invention by way of example and not by way of limitation. This description will clearly enable one skilled in the art to make and use the claimed invention, and describes several embodiments, adaptations, variations, alternatives and uses of the claimed invention, including what is presently believed to be the best mode of carrying out the claimed invention. Additionally, it is to be understood that the claimed invention is not limited in its application to the details of construction and the arrangements of components set forth in the following description or illustrated in the drawings. The claimed invention is capable of other embodiments and of being practiced or being carried out in various ways. Also, it is to be understood that the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting.
[0020] The impedance heated continuous emission monitoring system (CEMS) 10 of this disclosure is represented schematically in
[0021] As represented in
[0022] The impedance heated CEMS 10 includes a tubing system or a tube 24. The tube 24 could be a single tube or could be one tube of a multiple or plurality of tubes arranged in a bundle. The tube 24 is constructed of a material that is a good heat conductor or has good thermal or heat conducting properties. For example, the tube 24 is constructed of a metallic material such as stainless steel. Other equivalent types of materials that are capable of conducting heat can be employed in the construction of the tube 24. As represented in
[0023] The impedance heated CEMS 10 also includes a source of electric power 32. The source of electric power 32 is represented in
[0024] A control panel 38 communicates with the source of electric power 32. The control panel 38 includes manual controls that enable the control of a voltage produced and delivered by the source of electric power 32. The control panel 38 could be any conventional type of control panel. The controls of the control panel 38 could be any type of controls equivalent to manual controls.
[0025] A first cable 42 is operatively connected between the first terminal 34 of the source of electric power 32 and the tube 24. For example, the first cable 42 is directly, electrically connected to the first terminal 34 to conduct electricity and electric power to or from the first terminal 34. The first cable 42 is constructed of a material having good electrically conductive properties. For example, the first cable 42 is constructed of copper. The first cable 42 is connected to either the input end 26 of the tube 24 or the output end 28 of the tube 24. As represented in
[0026] A second cable 44 is operatively connected between the second terminal 36 of the source of electric power 32 and the tube 24. For example, the second cable 44 is directly, electrically connected to the second terminal 36 to conduct electricity and electric power to or from the second terminal 36. The second cable 44 is constructed of a material having good electrically conductive properties. For example, the second cable 44 is constructed of copper. The second cable 44 is electrically connected to the output end 28 of the tube 24 when the first cable 42 is electrically connected to the input end 26 of the tube 24. The second cable 44 is electrically connected to the input end 26 of the tube 24 when the first cable 42 is electrically connected to the output end 28 of the tube 24. As represented in
[0027] The impedance heating of the CEMS 10 is represented by the flow chart of
[0028] The heating of the gases or other emissions passing through the tube 24 keeps the gases or other emissions above their dew point temperature and prevents liquids from separating out from the gases prior to the gases or other emissions being communicated with the emissions analyzer 22 at the output end 28 of the tube 24.
[0029] In view of the above, it will be seen that the several objects and advantages of the present invention have been achieved and other advantageous results have been obtained.
[0030] As various changes could be made in the above constructions without departing from the scope of the invention, it is intended that all matter contained in the above description or shown in the accompanying drawings shall be interpreted as illustrative and not in a limiting sense.