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Image Search Results


DC microgrid topology with four DGUs. The blue arrow indicates the cyber layer and the black arrow indicates the physical flow.

Journal: Scientific Reports

Article Title: Enhancing resilience of distributed DC microgrids against cyber attacks using a transformer-based Kalman filter estimator

doi: 10.1038/s41598-025-90959-4

Figure Lengend Snippet: DC microgrid topology with four DGUs. The blue arrow indicates the cyber layer and the black arrow indicates the physical flow.

Article Snippet: By implementing an DC microgrid in the MATLAB environment, the performance of the suggested method was verified, and its electrical configuration and communication framework are shown in Fig. .

Techniques:

DC microgrid interfaced with real time simulator.

Journal: Scientific Reports

Article Title: Implementation and proficiency analysis of enhanced graph algorithm for DC microgrid applications

doi: 10.1038/s41598-024-65225-8

Figure Lengend Snippet: DC microgrid interfaced with real time simulator.

Article Snippet: The results are verified in a 13 bus DC microgrid system built in MATLAB Simulink platform integrated with Opal real time (RT) simulator, and the GABPC is interfaced using python program.

Techniques:

( a ) Voltage, current and power profile of DC microgrid system, ( b ). Breaker performance under step change in load condition.

Journal: Scientific Reports

Article Title: Implementation and proficiency analysis of enhanced graph algorithm for DC microgrid applications

doi: 10.1038/s41598-024-65225-8

Figure Lengend Snippet: ( a ) Voltage, current and power profile of DC microgrid system, ( b ). Breaker performance under step change in load condition.

Article Snippet: The results are verified in a 13 bus DC microgrid system built in MATLAB Simulink platform integrated with Opal real time (RT) simulator, and the GABPC is interfaced using python program.

Techniques:

Functionality of the proposed algorithm in DC microgrid.

Journal: Scientific Reports

Article Title: Implementation and proficiency analysis of enhanced graph algorithm for DC microgrid applications

doi: 10.1038/s41598-024-65225-8

Figure Lengend Snippet: Functionality of the proposed algorithm in DC microgrid.

Article Snippet: The results are verified in a 13 bus DC microgrid system built in MATLAB Simulink platform integrated with Opal real time (RT) simulator, and the GABPC is interfaced using python program.

Techniques:

13- bus DC microgrid interfaced with Real time controller for Software in loop (SIL) testing.

Journal: Scientific Reports

Article Title: Implementation and proficiency analysis of enhanced graph algorithm for DC microgrid applications

doi: 10.1038/s41598-024-65225-8

Figure Lengend Snippet: 13- bus DC microgrid interfaced with Real time controller for Software in loop (SIL) testing.

Article Snippet: The results are verified in a 13 bus DC microgrid system built in MATLAB Simulink platform integrated with Opal real time (RT) simulator, and the GABPC is interfaced using python program.

Techniques: Software

Fault analysis of thirteen bus DC microgrid.

Journal: Scientific Reports

Article Title: Implementation and proficiency analysis of enhanced graph algorithm for DC microgrid applications

doi: 10.1038/s41598-024-65225-8

Figure Lengend Snippet: Fault analysis of thirteen bus DC microgrid.

Article Snippet: The results are verified in a 13 bus DC microgrid system built in MATLAB Simulink platform integrated with Opal real time (RT) simulator, and the GABPC is interfaced using python program.

Techniques: