The subject matter disclosed herein relates to solutions for mapping slag zones in a boiler. Specifically, the subject matter disclosed herein relates to mapping slag zones in fossil-fuel fired boiler systems.
Fossil-fuel fired boiler systems are commonly used to generate electricity. One type of fossil-fuel fired boiler system combusts an air/coal mixture to generate heat energy. This heat energy is used to increase a temperature of water to produce steam. This steam is then used to drive a turbine generator that outputs electrical power.
These fossil-fuel fired boiler systems may have regions in which slag or unburned hydrocarbons adhere to walls of the boiler system and accumulate to form large masses. If this slag formation is not controlled, the accumulation may affect run-time efficiency of the boiler system, as well as the maintenance cycle.
Solutions for mapping slag zones in a boiler are disclosed. In one embodiment, the slag zone mapping system includes: an obtainer for obtaining data about a location of a slag zone within a boiler, the slag zone being one of a plurality of slag zones in a slag plane; a determinater for determining a flow distribution of a working fluid within the boiler, the flow distribution originating at a plurality of burners and intersecting the slag zone and a sensor grid including a plurality of grid sensors; an identifier for identifying at least one grid sensor in the plurality of grid sensors that is intersected by the flow distribution of the working fluid; and a user interface module for displaying the flow distribution of the working fluid from the plurality of burners to the at least one grid sensor.
A first aspect of the invention provides a slag zone mapping system comprising: an obtainer for obtaining data about a location of a slag zone within a boiler, the slag zone being one of a plurality of slag zones in a slag plane; a determinater for determining a flow distribution of a working fluid within the boiler, the flow distribution originating at a plurality of burners and intersecting the slag zone and a sensor grid including a plurality of grid sensors; an identifier for identifying at least one grid sensor in the plurality of grid sensors that is intersected by the flow distribution of the working fluid; and a user interface module for displaying the flow distribution of the working fluid from the plurality of burners to the at least one grid sensor.
A second aspect of the invention provides a boiler comprising: a plurality of burners; a working fluid heated by the plurality of burners; a sensor grid in contact with the working fluid; and a slag zone mapping system connected to the sensor grid and the plurality of burners, the slag zone mapping system including: an obtainer for obtaining data about a location of a slag zone within a boiler, the slag zone being one of a plurality of slag zones in a slag plane; a determinater for determining a flow distribution of a working fluid within the boiler, the flow distribution originating at a plurality of burners and intersecting the slag zone and a sensor grid including a plurality of grid sensors; an identifier for identifying at least one grid sensor in the plurality of grid sensors that is intersected by the flow distribution of the working fluid; and a user interface module for displaying the flow distribution of the working fluid from the plurality of burners to the at least one grid sensor.
A third aspect of the invention provides a program product stored on a computer readable medium, which when executed, performs the following: obtaining data about a location of a slag zone within a boiler, the slag zone being one of a plurality of slag zones in a slag plane; determining a flow distribution of a working fluid within the boiler, the flow distribution originating at a plurality of burners and intersecting the slag zone and a sensor grid including a plurality of grid sensors; identifying at least one grid sensor in the plurality of sensors that is intersected by the flow distribution of the working fluid; and displaying, on a user interface, the flow distribution of the working fluid from the plurality of burners to the at least one grid sensor.
A fourth aspect of the invention provides a method of generating a system for mapping slag zones in a boiler, the method comprising: providing a computer system operable to: obtain data about a location of a slag zone within the boiler, the slag zone being one of a plurality of slag zones in a slag plane; determine a flow distribution of a working fluid within the boiler, the flow distribution originating at a plurality of burners and intersecting the slag zone and a sensor grid including a plurality of grid sensors; identify at least one grid sensor in the plurality of grid sensors that is intersected by the flow distribution of the working fluid; and display, on a user interface, the flow distribution of the working fluid from the plurality of burners to the at least one grid sensor.
A fifth aspect of the invention provides a method comprising: at least one of providing or receiving a copy of a computer program that is embodied in a set of data signals, wherein the computer program enables a computer system to implement a method of mapping slag zones in a boiler, the method comprising: obtaining data about a location of a slag zone within the boiler, the slag zone being one of a plurality of slag zones in a slag plane; determining a flow distribution of a working fluid within the boiler, the flow distribution originating at a plurality of burners and intersecting the slag zone and a sensor grid including a plurality of grid sensors; identifying at least one grid sensor in the plurality of grid sensors that is intersected by the flow distribution of the working fluid; and displaying, on a user interface, the flow distribution of the working fluid from the plurality of burners to the at least one grid sensor.
A sixth aspect of the invention provides a method of mapping slag zones in a boiler, the method comprising: obtaining data about a location of a slag zone within the boiler, the slag zone being one of a plurality of slag zones in a slag plane; determining a flow distribution of a working fluid within the boiler, the flow distribution originating at a plurality of burners and intersecting the slag zone and a sensor grid including a plurality of grid sensors; identifying at least one grid sensor in the plurality of grid sensors that is intersected by the flow distribution of the working fluid; and displaying, on a user interface, the flow distribution of the working fluid from the plurality of burners to the at least one grid sensor.
These and other features of this invention will be more readily understood from the following detailed description of the various aspects of the invention taken in conjunction with the accompanying drawings that depict various embodiments of the invention, in which:
It is noted that the drawings of the invention are not to scale. The drawings are intended to depict only typical aspects of the invention, and therefore should not be considered as limiting the scope of the invention. In the drawings, like numbering represents like elements between the drawings.
As indicated above, aspects of the invention provide solutions for mapping slag zones in a boiler. As used herein, unless otherwise noted, the term “set” means one or more (i.e., at least one) and the phrase “any solution” means any now known or later developed solution.
Turning to the drawings,
Computer system 20 is shown in communication with boiler 100, which may include slag sensors 34 and sensor grid 130. Further, computer system 20 is shown in communication with user 36. A user may, for example, be a programmer or operator. Interactions between these components and computer system 20 will be discussed in subsequent portions of this application. Computer system 20 is shown including a processing component 22 (e.g., one or more processors), a storage component 24 (e.g., a storage hierarchy), an input/output (I/O) component 26 (e.g., one or more I/O interfaces and/or devices), and a communications pathway 28. In one embodiment, processing component 22 executes program code, such as slag zone mapping system 30, which is at least partially embodied in storage component 24. While executing program code, processing component 22 can process data, which can result in reading and/or writing the data to/from storage component 24 and/or I/O component 26 for further processing. Pathway 28 provides a communications link between each of the components in computer system 20. I/O component 26 can comprise one or more human I/O devices or storage devices, which enable user 36 to interact with computer system 20 and/or one or more communications devices to enable user 36 to communicate with computer system 20 using any type of communications link. To this extent, slag zone mapping system 30 can manage a set of interfaces (e.g., graphical user interface(s), application program interface, and/or the like) that enable human and/or system interaction with slag zone mapping system 30.
In any event, computer system 20 can comprise one or more general purpose computing articles of manufacture (e.g., computing devices) capable of executing program code installed thereon. As used herein, it is understood that “program code” means any collection of instructions, in any language, code or notation, that cause a computing device having an information processing capability to perform a particular function either directly or after any combination of the following: (a) conversion to another language, code or notation; (b) reproduction in a different material form; and/or (c) decompression. To this extent, slag zone mapping system 30 can be embodied as any combination of system software and/or application software. In any event, the technical effect of computer system 20 is to provide processing instructions for mapping slag zones in a boiler.
Further, slag zone mapping system 30 can be implemented using a set of modules 32. In this case, a module 32 can enable computer system 20 to perform a set of tasks used by slag zone mapping system 30, and can be separately developed and/or implemented apart from other portions of slag zone mapping system 30. Slag zone mapping system 30 may include modules 32 which comprise a specific use machine/hardware and/or software. Regardless, it is understood that two or more modules, and/or systems may share some/all of their respective hardware and/or software. Further, it is understood that some of the functionality discussed herein may not be implemented or additional functionality may be included as part of computer system 20.
When computer system 20 comprises multiple computing devices, each computing device may have only a portion of slag zone mapping system 30 embodied thereon (e.g., one or more modules 32). However, it is understood that computer system 20 and slag zone mapping system 30 are only representative of various possible equivalent computer systems that may perform a process described herein. To this extent, in other embodiments, the functionality provided by computer system 20 and slag zone mapping system 30 can be at least partially implemented by one or more computing devices that include any combination of general and/or specific purpose hardware with or without program code. In each embodiment, the hardware and program code, if included, can be created using standard engineering and programming techniques, respectively.
Regardless, when computer system 20 includes multiple computing devices, the computing devices can communicate over any type of communications link. Further, while performing a process described herein, computer system 20 can communicate with one or more other computer systems using any type of communications link. In either case, the communications link can comprise any combination of various types of wired and/or wireless links; comprise any combination of one or more types of networks; and/or utilize any combination of various types of transmission techniques and protocols.
As discussed herein, slag zone mapping system 30 enables computer system 20 to provide processing instructions for mapping slag zones in a boiler. Slag zone mapping system 30 may include logic, which may include the following functions: an obtainer 30, a determinater 50, an identifier 60 and a user interface 70 (
Turning to
The build-up of slag may be categorized by slag zones 152 within a slag plane 150. Slag zones 152 may include locations within boiler 100 where slag has accumulated or where evaluation of slag is desired. Slag plane 150 may include observation locations in one or more areas of boiler 100. In one embodiment, slag plane 150 may be a vantage point for physical observation of a location of slag zone 152. For example, slag plane 150 may be located adjacent a door or opening on side 160 of boiler 100. In this case, user 36 (
Also shown in
Turning to
In step S2, determinater 50 determines a flow distribution of working fluid 120 within boiler 100. The flow distribution originates at plurality of burners 110 and intersects slag zone 150 and sensor grid 130 including a plurality of grid sensors. Determining the flow distribution may be based on sensor grid data versus burner conditions data correspondence. This data correspondence may include data about conditions at plurality of burners 110 and at sensor grid 130. These conditions may include: air to fuel ratios, CO concentrations, temperature, flow rates, etc.
Using the data correspondence and the data about a location of slag zone 152 within boiler 100, identifier 60 may identify at least one grid sensor in the plurality of grid sensors in sensor grid 130 that is intersected by the flow distribution of working fluid 120 in step S3. Each grid sensor within sensor grid 130 may have a data correspondence with one or more specific burners 110 under predetermined conditions. For example, plurality of burners 110 may produce a working fluid 120 that intersects sensor grid 130. Data correspondence between plurality of burners 110 and sensor grid 130 may indicate expected grid sensor readings (e.g., temperature, CO concentration, etc.) for particular burner 110 conditions (e.g., temperature, CO concentration, etc.). However, slag zones 152 may interfere with the flow of working fluid 120 such that actual grid sensor readings at sensor grid 130 differ from the expected grid sensor readings. This discrepancy in grid sensor readings at sensor grid 130 indicates a flow distribution of working fluid 120 which differs from an expected flow distribution. This different flow distribution can be traced to at least one grid sensor within sensor grid 130, and that at least one grid sensor can be identified. Based upon the location of slag zone 152, readings at sensor grid 130, known conditions at plurality of burners 110 and sensor grid data versus burner conditions data correspondence, a flow distribution of working fluid 120 can be determined.
In step S4, the method includes displaying the flow distribution of working fluid 120 from plurality of burners 110 to the at least one sensor grid 130, for example, on a user interface 70. Turning to
User interface 70 may also include sensor grid readings 74 that indicate readings at plurality of grid sensors on sensor grid 130. User interface may also include boiler readings 76 as well as historical boiler data 78. Additionally, user interface 70 may also include a “Calculate Slag Map” (CSM) button 80. User 36 may request calculation of a slag map by triggering CSM button 80. Upon triggering of CSM button 80, a boiler map 200 (
Turning to
While shown and described herein as a slag zone mapping system, it is understood that aspects of the invention further provide various alternative embodiments. For example, in one embodiment, the invention provides a computer program embodied in at least one computer-readable medium, which when executed, enables a computer system to map slag zones in a boiler. To this extent, the computer-readable medium includes program code, such as slag zone mapping system 30 (
In another embodiment, the invention provides a method of providing a copy of program code, such as slag zone mapping system 30 (
In still another embodiment, the invention provides a method of generating a system for mapping slag zones in a boiler. In this case, a computer system, such as computer system 20 (
It is understood that aspects of the invention can be implemented as part of a business method that performs a process described herein on a subscription, advertising, and/or fee basis. That is, a service provider could offer to provide processing instructions for mapping slag zones in a boiler as described herein. In this case, the service provider can manage (e.g., create, maintain, support, etc.) a computer system, such as computer system 20 (
This written description uses examples to disclose the invention, including the best mode, and also to enable any person skilled in the art to practice the invention, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the invention is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they have structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal languages of the claims.