Method and System for Generating and Optimizing the Capacity Ratings of an Electric Power System Facility
A method and system is provided for optimizing electric loading transfer capabilities. In one embodiment, the system comprises a processor which receives and stores information regarding available resources of one or more electric power facilities. The system includes a capability datastore and an external factors datastore, both of which communicate with the processor and with each other. The capability datastore determines electrical capabilities of the available resources at any given point in time while the external factors datastore determines a plurality of variables which affect the electrical capabilities. A resource manager connected to the processor is also provided. The resource manager allocates the plurality of available resources by optimizing and correlating the electrical capabilities with the plurality of variables, to generate an electric capacity rating for the one or more electric power facilities.
The invention relates generally to a system and method of optimizing electric loading transfer capabilities, and more specifically, to a computer system capable of generating real-time electric capacity ratings for one or more electric power facilities.
BACKGROUND OF THE INVENTIONWith the electric industry's transition from a traditional rate-based regulation towards a deregulated energy marketplace, electricity consumers now have the ability to select their electricity services from various energy suppliers. Under the deregulated scheme, the transmission of bulk electric power continues to be regulated—by the Federal Energy Regulatory Commission (FERC), the North American Electric Reliability Corporation (NERC), and Regional Transmission Operators (RTO)—and remains the responsibility of local utility companies. This restructuring of the energy marketplace allows for consumers to have their electricity produced, transported and delivered from more than one provider. By supplying consumers with increased options for procuring their electricity needs, energy deregulation aims to improve reliability of the electric power system, serve increasing electricity demands, foster market competition, and thus lower the price of electricity.
The competition has affected how energy suppliers generate, transmit, and distribute electric power. For example, bulk power exchange between different electric-utility service areas has become more common today. There is an increased need to buy and sell electric power over longer distances. This transfer of power has placed greater demand and strain on existing generation and transmission facilities. As a result, many power grid regions have experienced power outages and curtailments. Potential causes for the power outages include unexpected energy demand spikes, unreliable electric power systems, and overtaxed electric transmission lines and substation components.
In order to meet the everyday demands for electricity and for the facilities used the transfer of bulk electric power are reliable and secure, the FERC, NERC and RTO's have developed reliability standards and rules for market participants that focus on energy planning, and facility design, management and operation. Moreover, energy planning and management helps with the increasingly complicated energy transactions, involving generation of bulk electric power from multiple suppliers, swapping electric power on the national grid, and sharing of regional transmission lines.
Consequently, it is desirable to introduce a method and system that can address the prior art's shortcomings while providing optimized energy transmission through asset planning and management during operations. It would also be desirable to have such a system that can accurately simulate and dynamically compute the electric capacity ratings (also known as facility ratings, thermal ratings, or load capability), accounting for a plurality of variable factors including ambient weather conditions.
SUMMARY OF THE INVENTIONAccordingly, the shortcomings of the prior art are overcome and additional advantages are provided through the provision of a method and related system for optimizing electric loading transfer capabilities. In one embodiment, the system comprises a processor which receives and stores information regarding available resources of one or more electric power facilities. The system also includes a capability datastore and an external factors datastore, both of which communicate with the processor and with each other. The capability datastore determines electrical capabilities of the available resources at any given point in time. The external factors datastore determines a plurality of variables which affect the electrical capabilities. The system further comprises a resource manager, which is in processing communication with the processor, the capability datastore, and the external factors datastore. The resource manager allocates the plurality of available resources by optimizing the electrical capabilities at a given point in time and by correlating the plurality of variables with the electrical capabilities in order to generate an electric capacity rating for the one or more electric power facilities.
The subject matter which is regarded as the invention is particularly pointed out and distinctly claimed in the concluding portion of the specification. The invention, however, both as to organization and method of practice, together with further objects and advantages thereof, may best be understood by reference to the following description taken in connection with the accompanying drawings in which:
While described below in a single computer environment, the system and method for calculating electric capacity ratings of one or more electric power facilities can be implemented in a networked computing arrangement in which a number of computing devices communicate over a local area network (LAN) or over a wide area network (WAN). Such an environment can include large scale wireless communications between a host computer and several portable computer terminals, including weather monitoring equipment and global positioning system units located on-site where the physical resources or electrical equipment of the one or more electric power facilities are positioned.
In one embodiment, a capability datastore is provided as shown and referenced by numeral 102. The capability datastore 102 determines the electrical capabilities of each individual resource at any given point in time. Generally, the electrical capabilities comprise one or more electric transmission, distribution, or generation capabilities. More specifically, the electrical capabilities of a resource represent the capacity of the resource to transfer electric power on an instantaneous basis. The capacity is often defined as the maximum allowable current, or the highest ampacity, at which the resource can be operated without violating safety codes or the integrity of the resource.
An external factors datastore is also provided as shown and referenced by numeral 103. The external factors datastore 103 maintains a collection of variables, which affect the electrical capabilities of each resource, and communicates the collection of variables to the processor 101 at any given point in time in order to update the electrical capabilities. Furthermore, a resource manager, shown and referenced as numeral 104, connects to the processor 101 to perform a majority of the processing functions of the electric capacity rating system 100. Specifically, the resource manager 104 allocates the plurality of resources by optimizing the defined electrical capabilities. In turn, the resource manager 104 correlates the plurality of variables with the electrical capabilities in order to generate an electric capacity rating for the one or more electric power facilities being analyzed.
In one embodiment, a clock, as shown and referenced by numeral 106, is coupled to processor 101 and provides a clock signal for electric capacity rating system 100. Clock 106, in turn, provides time and date information to the processor 101 as well as the capability datastore 102, the external factors datastore 103, and the resource manager 104. In one embodiment, system 100 reads an internal clock from a host computer 150 and updates the clock 106. In another embodiment, a network clock 151 is used to update clock 106. As will be appreciated by those skilled in the art, the use of a clock can be substituted or omitted in alternate embodiments.
The system 100 also has a memory unit, as shown and referenced by numeral 105 in
The compiled data that is saved in the memory unit 105 includes information about: (i) the plurality of available resources; (ii) the electrical capabilities determined by the capability datastore 102; and (iii) the plurality of variables ascertained by the external factors datastore 103. In addition to providing storage for the compiled data, the memory unit 105 offers various tiers of information technology security. This plurality of security levels accommodates the different standards of conduct to be observed between regulated and unregulated groups (i.e. transmission providers and all their energy affiliates, independent system operators, regional transmission organizations) within the one or more electric power facilities. An example of a standard of conduct can be the Standards of Conduct and Audits defined by the Federal Energy Regulatory Commission. However, the memory unit 105 maintains the flexibility to provide different levels of security to meet any standards of conduct enforced by any agency, commission, or party.
Once the virtual model has been constructed, the system 100 proceeds with step 204, wherein the capability datastore 102 provides information on the electrical capabilities of each of the plurality of resources present in the one or more electric power facilities. The information pertaining to electrical capabilities can include resource equipment properties, resource composition, resource construction, and resource thermal limits. Other information not mentioned above can also be selectively provided as will be appreciated by those skilled in the art.
In step 205, the processor 101 receives the electrical capabilities from the capability datastore 102, and directs the resource manager 104 to develop and associate a mathematical rubric, including one or more formulas or algorithms, with each of the plurality of resources. If the mathematical rubrics do not require input of a plurality of variables, the resource manager proceeds to step 207. However, if the mathematical rubrics require quantities for a plurality of variables, the processor 101 in step 206 requests such information from the external factors datastore 103. The plurality of variables provided by the external factors datastore 103 includes important weather parameters, such as ambient temperature, wind speed, and wind direction. Other weather parameters, such clarity of atmosphere, solar radiation, air density, air viscosity, and air thermal conductivity, may also be included. The plurality of variables also comprise non-weather-related parameters, such as geographic position and elevation above sea level of said one or more electric power facilities, orientation of said plurality of resources, time of day, day of year, and seasonal period.
Before the external factors datastore 103 sends the plurality of variables to processor 101, the plurality of variables are updated either dynamically by external sources 120 or manually by user input. Specifically, with respect to updating weather parameters, the external sources 120 may comprise a meteorological institute. Supervisory Command and Data Acquisition (SCADA) systems 121 and other remote access systems may also provide the necessary data to update the plurality of variables. Alternatively, weather measurement sensors placed near the locations of the resources can also serve as the external sources 120. Furthermore, if dynamic updates from external sources 120 or manual updates are not available, the external factors datastore 103 can define the plurality of variables using old values previously saved in the memory unit 105.
Continuing in step 206, the resource manager 104 applies the plurality of variables to the mathematical rubrics. After the mathematical rubrics have been populated with the plurality of variables, the resource manager 104 proceeds with step 207, wherein the manager 104 links together the mathematical rubrics of the plurality of resources. As a result of the linking, the manager 104 forms a comprehensive representation, which characterizes the one or more electric power facilities as a single, homogenous system. In step 208, the processor 101 saves the record of the one or more electric power facilities, including the comprehensive representation and compiled data, to the memory unit 105. This record can later be retrieved for future observation, modification, or analysis of electric capacity rating of the one or more electric power facilities.
In steps 227-229, the processor 101 displays the electric capacity ratings and compiled data (i.e. plurality of resources, electrical capabilities, and plurality of variables) in a graphical user interface 107, generates a report documenting the above information, and saves the above information into the memory unit 105. Finally, in step 230, the resource manager 104 performs optimization of the electric capacity rating. For instance, the resource manager 104 achieves a higher capacity rating by optimizing the electrical capabilities with the plurality of resources given updated plurality of variables. In turn, the electric capacity rating can be used temporarily by operators of the one or more electric power facilities to generate, distribute, or transmit more electricity effectively and efficiently. As shown in step 231, the processor 101 sends the electric capacity ratings through at least one peripheral link 122 to a network of Supervisory Command and Data Acquisition (SCADA) systems 121 (as shown in
As shown in
Category panel 305 is a listing of options representing various types of electric power facilities. The category panel 305 typically shows a “Distribution” option representing an electric power distribution facility, a “Generation” option representing an electric power generation facility, and a “Transmission” option representing an electric power transmission facility. In addition, an option labeled “Add a Category” is included in the listing of options to allow the user to load and select other categories of an electric power facility.
Once the user selects an option in category panel 305, system panel 306 displays a list of available electric power facilities identified under the chosen category. In this example, the user selected the “Transmission” option in category panel 305. As a result, the system panel 306 shows different systems of electric power transmission facilities (i.e. “Transformer Positions”, “Line”, “Station Bus”, “Shunt Capacitor Position”, “Shunt Reactor Position”). In a similar manner, voltage panel 307 becomes populated with various voltage ratings once the user chooses a particular system of electric power facility in the system panel 306. Each rating displayed in voltage panel 307 represents a voltage in which the selected electric power facility may be rated. In this example, the user selected the “Station Bus” electric power facility in system panel 306, and as a result, voltage panel 307 displays multiple voltage ratings. Once the user selects a specific voltage rating, query panel 308 lists records saved in memory 105 which reflect the user-selected combination of category, system, and voltage rating. The user may then choose any one of the listed records of electric power facilities to view or edit.
The thermal rating navigation window 304 also provides several command buttons to initiate different actions by the electric capacity rating system 100. After making selections in category panel 305, system panel 306, and voltage panel 307 and choosing a record in query panel 308, the user may modify the virtual model (of the one or more electric power facilities) saved within that record by selecting the edit button 309. Alternatively, if the user wants to construct a new virtual model (and thus new record), the user may select the create button 310, as shown in
Following the selection of the create button 310, the GUI 107 displays a power facility design window 312, as illustrated in
Command buttons are also provided in the power facility design window 312 to allow the user to navigate to other application windows or to perform designated functions. In particular, a save record button 322 is provided for the user to save the record of the one or more electric power facilities being created. The user may also select a component design button 323 which also saves the record and subsequently directs the user to a component design window 324, as illustrated in
In the component design window 324, the user can build in detail an exact combination and sequence of resources present in the one or more electric power facilities. The component design window 324 comprises of three main panels: a graphical display panel 325, a workspace panel 326, and an equipment library panel 327. Within the graphical display panel 325, the user can see a line representation of the one or more electric power facilities. Moreover, the user can highlight a specific portion of the line representation to begin the design process. To start designing the one or more electric power facilities, the user first refers to the equipment library panel 327, where various symbols representing electric power facility resources (i.e. equipment) are listed. Once the user finds a resource to be utilized in the building of the highlighted portion of the electric power facility, the user selects the symbol and drag-and-drops the symbol inside the workspace panel 326. The user executes the same maneuver for the other resources to be utilized in building the highlighted portion of the electric power facility. Within the workspace panel 326, the user can then connect the resource symbols in any particular sequence.
Furthermore, within the workspace panel 326, the user can double-click on any one of the symbols to view and modify the properties of that resource. In this example, the user double-clicks on symbol 328A labeled “Circular Rigid Bus.” As a result, an equipment library window 329, as shown in
Once a selection has been made, the user must apply additional parameters for the resource (i.e. rigid circular bus) by selecting an apply parameters button 332. In selecting the apply parameters button 332, the user navigates to a rating parameters window 333, as illustrated in
The rating parameters window 333 provides date-time panels to specify the time period in which electric capacity ratings are to be calculated. In this example, since a “winter-summer” seasonal rating was selected in the seasonal rating panel 319 of the power facility design window 312 (
After the user has specified the geophysical and climate rating parameters, the user can select an apply gpc button 346 which will apply these parameters to the resource and subsequently direct the user to a conductor rating conditions window 348, as shown in
In the conduct rating conditions window 348 of the GUI 107, the user can specify more detailed parameters for the selected resource (i.e. circular rigid bus). Depending on the selections made in the rating system panel 318 and the seasonal rating panel 319 of the power facility design window 312 (
Finally, after all parameters for a particular resource have been set and applied, the user can begin the process of calculating the electric capacity rating of the one or more electric power facilities by selecting a run thermal ratings button 369 in the conductor rating conditions window 348 (
A calculate command button 377 allows the user to initiate the process of calculating the electric capacity rating of each resource present in the one or more electric power facilities. As a result, a resource thermal rating panel 374 itemizes summer and winter electric capacity ratings for each resource based on different rating methods (i.e. normal, long-term emergency, short-term emergency, drastic action limit). A status view panel 375 gives the user the ability to control which resources will appear in the resource thermal rating panel 374. In this example, since the “In Service and To Be Installed Less To Be Removed” option is selected in the status view panel 375, the resource thermal rating panel 374 displays all the resources present in the one or more electric power facilities. Other options in the status view panel 375 adjust the resource thermal rating panel 374 to hide the information concerning resources that are out of service or that are scheduled to be removed.
A summary thermal rating panel 376 is also included in the thermal ratings window 371. The summary thermal rating panel 376 compares the electric capacity ratings of all the resources displayed in the thermal rating panel 374 and displays the minimum values for each rating method (i.e. Normal, LTE, STE, DAL). These minimum values in turn reflect the overall electric capacity ratings of the one or more electric power facilities. Additionally, the user can adjust the units, such as amperes to apparent power (MVA), in which the electric capacity ratings are calculated and displayed.
A report center window 390, as illustrated in
From the query panel 394, the user selects the specific electric power facility for which he or she would like to generate a report. In addition, a report selection panel 395 gives the user the ability to choose the type of report to generate. In this example, the user can choose to generate a NX-9A document (i.e. facility rating and characteristics data implementation form), an overall electric capacity ratings report, or an itemized electric capacity ratings report by selecting a NX-9A button 396, line rating report button 397, or itemized rating report button 398, respectively. Once a report has been generated, the user can optimize the electric capacity ratings of other electric power facilities by selecting a trnc button 399 which navigates the user back to the thermal rating navigation window 304 (
It should be noted that any time or weather related parameters which the user manually inputs into the system 100 can be automated and obtained from external sources 120. More specifically, the date-time panels 339, 340, 341, 342 of the rating parameters window 333 (
A station details panel 403 allows the user to specify the name and transmission type of each transmission line. Moreover, a rating details panel 404 lets the user designate the rating method and seasonal rating for the transmission lines. When a combination of visual objects representing a transmission line is saved, a mathematical rubric characterizes the combination and categorizes the combination into segments. The number of segments present in the combination depends on the quantity and orientation of stations and junctions used to create the transmission line. Each segment can then be selected in the component design window 324 and further defined by creating an electric circuit representation, using the symbols in equipment library panel 327. Furthermore, each segment can have its own electric capacity rating calculated. These electric capacity ratings can subsequently be reported to regional transmission operators and sent to their energy management systems for efficient management of regional electric transmission grids.
Although the invention has been described with reference to particular arrangement of parts, features, and the like, these are not intended to exhaust all possible arrangements or features, and indeed many modifications and variations will be ascertainable to those of skill in the art.
Reference throughout the specification to “one embodiment”, “another embodiment”, “an embodiment”, and so forth, means that a particular element (e.g. feature, structure, and/or characteristic) described in connection with the embodiment is included in at least one embodiment described herein, and may or may not be present in other embodiments. In addition, it is to be understood that the described elements may be considered in any suitable manner in the various embodiments.
The terms “a” or “an”, as used herein, are defined as one or more than one. The term “plurality”, as used herein, is defined as two or more than two. The term “another”, as used herein, is defined as at least a second or more. The terms “including” and/or “having”, as used herein, are defined as comprising (i.e., open language). The term “coupled”, as used herein, is defined as connected, although not necessarily directly, and not necessarily mechanically. The terms “optional” or “optionally” are defined such that the subsequently described event or circumstance may or may not occur, and that the description includes instances where the event occurs and instances where it does not.
While the invention has been described in accordance with certain preferred embodiments thereof, those skilled in the art will understand the many modifications and enhancements which can be made thereto without departing from the true scope and spirit of the invention, which is limited only by the claims appended below.
Claims
1. An electric capacity rating system for optimizing electric loading transfer capabilities, comprising:
- a processor for receiving and storing information about available resources in one or more electric power facilities;
- a capability datastore in communication with said processor for determining electrical capabilities at any given point in time;
- an external factors datastore for determining a plurality of variables which affect said electrical capabilities; and
- a resource manager for allocating said plurality of available resources by optimizing said electrical capabilities at any given point in time;
- said resource manager correlating said plurality of variables with said electrical capabilities to generate an electric capacity rating for said one or more electric power facilities; and
- said resource manager, said external factors datastore, and said capability datastore being in processing communication with said processor and with each other.
2. The system according to claim 1, wherein said processor commands a memory unit in order to read and write compiled data to said memory unit;
- said compiled data comprises information about said plurality of available resources, said electrical capabilities, and said plurality of variables;
- said memory unit comprises an internal memory integrated with said processor.
3. The system according to claim 2, wherein said memory unit further comprises an external memory accessible by said processor.
4. The system according to claim 2, further comprising at least one data port interface supporting a plurality of independent communication channels in processing communication with each other and with said processor and said memory unit;
- wherein said processor sends and receives said compiled data and said electric capacity rating, through said plurality of independent communication channels, to and from said memory unit, respectively.
5. The system according to claim 4, wherein said plurality of available resources comprises electric generation, distribution and transmission components, said plurality of variables comprises weather parameters, and said electrical capabilities comprises either generation, distribution or transmission capabilities.
6. The system according to claim 5, wherein said weather parameters include ambient temperatures, wind speed, wind direction, clarity of atmosphere, solar radiation, air density, air viscosity, and air thermal conductivity;
- wherein said electrical capabilities include resource equipment properties, resource composition, resource construction, and resource thermal limits of said plurality of available resources; and
- wherein said plurality of variables further comprises geographic position and elevation above sea level of said one or more electric power facilities, orientation of each of said plurality of resources, time of day, day of year, and seasonal period.
7. The system according to claim 6, wherein said plurality of variables can be updated dynamically by external sources and manually by a system user;
- said external factors datastore can define said plurality of variables using old values previously saved in said memory unit if dynamic updates from said external sources or manual updates are not available.
8. The system according to claim 7, wherein said processor obtains said electrical capabilities from said capability datastore and directs said resource manager to associate each of said plurality of resources with a mathematical routine including one or more formulas or algorithms;
- said mathematical routine reflecting said electrical capabilities of each of said plurality of resources; and
- wherein said resource manager links together each of said mathematical routines and forms a comprehensive representation of said one or more electric power facilities as a homogenous system;
- said processor saving a record of said comprehensive representation in said memory unit.
9. The system according to claim 8, wherein said external factors datastore retrieves updated values of said plurality of variables from said external sources;
- said processor directs said resource manager to use said updated values of said plurality of variables and said electrical capabilities to define unknown quantities within said comprehensive representation;
- said resource manager calculates a current value of said electric capacity rating using said comprehensive representation; and
- said processor saves said current value of said electric capacity rating to said memory unit.
10. The system according to claim 9, wherein said processor generates an analytical report documenting said compiled data and said electric capacity rating, which are stored in said memory unit;
- said processor communicating said analytical report to external entities.
11. The system according to claim 9, further comprising a graphical user interface to assist in operating and automating said system;
- said graphical user interface displaying said compiled data and said electric capacity rating, which are stored in said memory unit.
12. The system according to claim 9, wherein said resource manager determines higher electric capacity ratings by optimizing said electrical capabilities with said plurality of available resources given said updated values of said plurality of variables, and said resource manager determines said higher electric capacity ratings according to set rules pertaining to safety limits and physical limits of said plurality of available resources.
13. The system according to claim 12, wherein said processor interprets and manipulates a plurality of Supervisory Command and Data Acquisition (SCADA) systems by communicating said electric capacity ratings to said plurality of SCADA systems through at least one peripheral link.
14. A method for optimizing electric loading transfer capabilities, comprising:
- establishing processing communication between a resource manager, an external factors datastore, a capability datastore, and a processor;
- receiving and storing information about available resources in one or more electric power facilities by said processor;
- determining electrical capabilities at any given point in time using said capability datastore;
- determining a plurality of variables which affect said electrical capabilities using said external factors datastore;
- allocating said plurality of available resources by using said resource manager to optimize said electrical capabilities at any given point in time;
- correlating said plurality of variables with said electrical capabilities using said resource manager; and
- generating an electric capacity rating of said one or more electric power facilities by using said resource manager.
15. The method according to claim 14, further comprising:
- reading, writing, and storing compiled data to a memory unit by said processor; and
- providing a plurality of security levels in said memory unit to accommodate different standards of conduct between regulated and unregulated groups involved with said one or more electric power facilities;
- said compiled data comprises information about said plurality of available resources, said electrical capabilities, and said plurality of variables.
16. The method according to claim 15, further comprising updating said plurality of variables dynamically by using external sources and manually by a system user; and
- defining said plurality of variables with old values previously saved in said memory unit, by using said external factors datastore, if dynamic updates from said external sources or manual updates are not available.
17. The method according to claim 16, further comprising:
- retrieving said electrical capabilities from said capability datastore by said processor; and
- directing said resource manager to associate each of said plurality of resources with a mathematical routine including one or more formulas or algorithms, said mathematical routine reflecting said electrical capabilities of each of said plurality of resources;
- linking together each of said mathematical routines using said resource manager;
- forming a comprehensive representation of said one or more electric power facilities as a homogenous system; and
- saving a record of said comprehensive representation in said memory unit by said processor.
18. The method according to claim 17, further comprising:
- retrieving updated values of said plurality of variables from said external sources by using said external factors datastore;
- directing said resource manager by said processor to use said updated values of said plurality of variables and said electrical capabilities to define unknown quantities within said comprehensive representation;
- calculating a current value of said electric capacity rating by said resource manager using said comprehensive representation; and
- saving said current value of said electric capacity rating to said memory unit by said processor.
19. The method according to claim 18, further comprising determining higher electric capacity ratings using said resource manager to optimize said electrical capabilities with said plurality of available resources given said updated values of said plurality of variables; and
- determining said higher electric capacity ratings according to set rules pertaining to safety limits and physical limits of said plurality of available resources.
20. A computer program product comprising an optimized electric loading transfer tool including a computer usable medium having computer readable program code means for causing a computer to effect method steps of:
- establishing processing communication between a resource manager, an external factors datastore, a capability datastore, and a processor;
- receiving and storing information about available resources in one or more electric power facilities by said processor;
- determining electrical capabilities at any given point in time using said capability datastore;
- determining a plurality of variables which affect said electrical capabilities using said external factors datastore;
- allocating said plurality of available resources by using said resource manager to optimize said electrical capabilities at any given point in time;
- correlating said plurality of variables with said electrical capabilities using said resource manager; and
- generating an electric capacity rating of said one or more electric power facilities by using said resource manager.
Type: Application
Filed: Mar 28, 2011
Publication Date: Oct 4, 2012
Inventor: Russell Raymond (Tolland, CT)
Application Number: 13/073,333
International Classification: G06F 1/28 (20060101);