Model Parts and Assembly. Jay Britton Britton Consulting LLC
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1 Model Parts and Assembly Jay Britton Britton Consulting LLC
2 WG13 Ref Model for a Network Analysis Case Physical Network Model Parts Repository Full Model Parts Incremental Model Parts Model Part Types: EQ SC OP DY DL Physical Model Select / Edit Equipment (EQ) - Equipment - Containment - Connectivity - Controls - SIPS - Equipment Rating - Normal operations - Energy allocation Short Circuit (SC) Dynamics (DY) Diagram Layout (DL) Normal Operations (OP) CIM Standard Datasets in a Network Analysis Case Measurement Sources Other External Sources Outage Schedules Energy Forecasts & Schedules SSH Model Parts Repository Full Model Parts Incremental Model Parts Device Status Initialization/Edit Control Setting Initialization/Edit Monitoring Initialization/Edit Energy Injection Initialization/Edit Steady-State Hypothesis (SSH) - Status - Switch status - In Service - Branch end - Tap positions - Control settings - Voltage regulation - Flow regulation - SIPS - Monitoring - Operating limits - Other - Energy Injections - Bulk generation - Solar - Wind - Storage - Traditional Load - DR - etc, Topology & Network Solution Algorithm Topology (TP) - TopologyNodes - association to conducting equipment State Variables (SV) - Energized State - Island Topology - BusVoltage - Bus Injections - Terminal flows - Controls - Violations
3 The Goal: Many Cases from Common Parts Model parts are maintained once TSO A Unified Grid Model TSO B A B C D Study Type 1 O O O Formal specification of modeling responsibility. E F G H I J K L M N O P Formal specification of study assembly process. Study Type 2 O O O Q R S T TSO W U V W X Study Type n TSO X and used in many different study case assemblies.
4 A Model Part is a set of CIM data that can be composed with other model parts to create a complete model. There can be any number of instances (versions) of a given model part. Versions are often used to track the as-built state of the network as the network evolves over time. A model part has business metadata. This describes: Model part name Model part relationship to a framework part Model part data type i.e. information model Model authority who is responsible for the content?
5 A Framework is a set of Framework Parts that define how Model Parts fit together. Two main kinds of Framework Parts: Frames define the regions (like TSOs) that are the responsibility of one model authority. Boundaries define the set of objects that the model authorities of two adjacent frames agree to maintain in common.
6 Framework Boundary nodes A-B Boundary Frame A Frame B B-C Boundary A-C Boundary Frame C
7 Framework Model Part for A Model Part for C Model Part for B A-B Boundary Frame A Frame B B-C Boundary A-C Boundary Frame C
8 Model Part Business Metadata Name: Belgium As-Built Detail Frame: Belgium Model Authority: Belgium TSO Name: German As-Built Equiv Frame: Germany Model Authority: France TSO Name: France As-Built Detail Frame: France Model Authority: France TSO
9 Model Part Content Belgium-Germany Boundary France-Germany Boundary France-Belgium Boundary
10 Assembling Model Parts Dump selected model part bags onto the magic table i.e. a workspace. The dangling references resolve. Dump in selected incremental model parts. The dangling references resolve. When all dangling references resolve, you have a complete case.
11 Incremental Model Parts Similar to Model Parts They have a type They have both envelope and content data. Different from Model Parts They express a change to a model part: Creation of objects Deletion of objects Modification of objects External references point to the modified objects. Used to represent planned new construction projects, for example.
12 An Assembly is a collection of model parts that are composed as part of some process. In discussion, but not yet formally standardized A Procedure describes how to assemble a model. The ability to capture common processes as repeatable, parameter-driven procedures is an essential feature for NMM products. An Audit Trail describes the how a model was assembled. The ability to exchange a case with documentation of how it was produced will greatly reduce the engineering time that goes into checking validity of results.
13 An interconnection framework example: 9 TSO frame parts 12 parts NW W-NW West W-C N-NW North N-C Central East W-SW S-C E-SE SW South SE S-SW S-SE E-C N-NE NE E-NE
14 Monolithic TSO Model Part Energy In/Out Bulk Power Grid Sub-Transmission Areas Energy In/Out
15 Decomposed TSO Model Part Adds Flexibility Bulk Power Grid Sub-Trans Sub-Trans Sub-Trans Bulk Power Grid Edge Edge Edge
16 Decomposition can be continued down into the distribution system. Use as many levels as are appropriate, but three is a good starting idea: Bulk power level (e.g. 345 and up) Mid-level (e.g or any non-bulk that is networked) Distribution level (primarily radial lower voltages) Strategy for decomposition can be left to the individual top level authority, as long as there are no ties (boundaries) that need to be agreed on.
17 Unifying T and D models Decomposition to lower voltages is the path to unifying transmission and distribution models. When T and D models fit together Better load modeling for T can be derived directly from D. Better source modeling for D can be derived directly from T. Specialized T and D studies are straightforward to create.
18 North Study 1: What TSO Frames to include? NW North NE West Central
19 North Study 2: Add Boundaries for the required Frames. NW W-NW West N-NW W-C North N-C Central E-C N-NE NE E-NE W-SW S-C
20 North Study 3: Add Edge Parts to represent interchange with un-modeled parts. NW W-NW West N-NW W-C North N-C Central E-C N-NE E-C Edge NE E-NE E-NE Edge W-SW W-SW Edge S-C S-C Edge
21 North Study 4: Select detail for TSO Frames. NW W-NW N-NW W-C N-C Central Bulk Inj E-C N-NE E-C Edge NE North TSO Bulk Power Grid E-NE BndryE-NE Edge Bndry Mid Grid Bndry Mid Grid Bndry Bndry Mid Grid Bndry Edge W-SW W-SW Edge S-C S-C Edge Inj / Cons Inj / Cons Inj / Cons West Bulk Power Grid Part Bulk Inj Bndry Bndry Mid Edge o o o Mid Edge
22 Interconnection Base Case from Member Cases
23 Here s the interconnection framework. NW W-NW West N-NW W-C North N-C Central E-C N-NE NE E-NE East W-SW S-C E-SE SW S-SW South S-SE SE
24 Process Overview 1. A merging authority initiates a base case process by providing the overall parameters: Date/Time to be represented Area net interchange for example, derived from market Applicable energy forecasts E.g. area demand Applicable energy schedules E.g. DC ties, generators, etc. for example, from market 2. Interconnection members prepare cases representing their territory. 3. Merging authority combines the member submissions into a single complete base case.
25 Net Interchange Model Part NW control area Net Interchange Model Part North control area NE-ne Control Are T NW W-NW West T T T N-NW T T W-C T North N-C Central T E-C N-NE T T NE E-NE East T T T W-SW S-C E-SE SW S-SW South S-SE SE
26 Merging authority supplies net interchange model part along with the parts that define the framework. Net Interchange Model Part NW ca W ca SW ca N ca C ca S ca NE ca E ca SE ca NW W-NW West N-NW W-C North N-C Central E-C N-NE NE E-NE East Net interchange model part supplied by merge authority. All IGMs can use the same model part. W-SW S-C E-SE SW S-SW South S-SE SE
27 Submitter prepares case for its territory based on best available knowledge. Net Interchange Model Part NW ca W ca SW ca N ca C ca S ca NE ca E ca SE ca NW W-NW West W-SW N-NW W-C North N-C Submitter (Central) S-C E-C N-NE NE E-NE East E-SE All submitters use the same net interchange model part and the same model scope. Submitter EQ and SSH prepared by submitter. Other TSOs are as good as the submitter can get e.g. from a similar case. SW S-SW South S-SE SE
28 Submitter territories are merged to form merged base case. Member Submitted Cases Interconnection Merged Case Net Interchange Model Part NW ca W ca SW ca N ca C ca S ca NE ca E ca SE ca NW W-NW West N-NW W-C North N-C Central E-C N-NE NE E-NE East W-SW S-C E-SE SW S-SW South S-SE SE
29
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