Hardware Development and Interoperability Testing of a Multivendor-IEC-61850-Based Digital Substation
Abstract
:1. Introduction
- A laboratory testbed of IEC-61850-based substation was configured and installed using multivendor devices.
- The problems that were faced during the installation are resolved with the successful testing of device interoperability.
- The substation model developed was tested for validating substation process bus communications.
- Validations of IED protection studies are performed with user-defined IED settings.
2. Brief Idea of IEC-61850-Based Digital Substation
2.1. Basics of IEC 61850
2.2. Digital Substation Communication Architecture
- Station Bus: This bus is carrying all the required information of protective relays or IEDs and substation supervisory control and data acquisition (SCADA) system operation. The substation controlling and monitoring are performed through this communication bus.
- Process Bus: This bus is used to interconnect the IEDs with current transformers (CTs)/ potential transformers (PTs) or other field devices. It reduces the construction and maintenance cost by removing the data communication wires. It also houses the merging units for vertical communications with other units or substations.
2.3. Benefits and Limitations of Implementing IEC 61850 Standards in Substations
- It improves the power quality and reduces copper wirings plugged into IEDs with a faster response to substation faults.
- Interoperability of IEDs and substation devices.
- Reduction in operation and maintenance cost of substations.
- Faster data transmission among substation devices.
- Substation operation and future expansion become easy due to the flexible functionality of IEC 61850.
- Implementation of IEC 61850 in existing substations requires either the removal or upgrade of old substation devices and additional cost investments.
- IEC 61850 implementation requires the processing and storage of a huge amount of real-time data.
- Single vendor devices can cooperate easily in single zone protection and operation only. However, the substation level devices from different vendors need to be connected to a common network of communication. The challenge here is to build cooperation among devices. In addition, successful testing of device interoperability needs to be performed before application in a real-time operational substation.
3. System Configuration Steps and Challenges
3.1. Integration of Multivendor Digital Substation
- Protection and control IED manager (PCM) 600 was installed in the client PC for the configuration of a single-bay digital substation.
- Wire shark software was installed on the client PC to monitor the travelling data packets.
- IED scout software was installed in both client and server PCs for mapping client–server communications.
- The substation IEDs that are needed in the testbed—that is, REL 670 and REC 670—were added to the PCM600 platform.
- A new project was built to configure the multivendor testbed in the PCM600 software.
- The IED configurations were produced in two sections:
- i.
- IED configuration and
- ii.
- Application configuration (designed all required function blocks).
- The configuration data stored in the SCL files were read and imported into PCM600 for both the IEDs.
- The Vizimax commissioning tool (VCT) was installed in the client PC for AMU configuration.
- Set up of the AMU attributes was performed to match the required substation operations and interoperation of IEDs.
- In PCM600, the configuration of AMU with local Ethernet port addressing was completed.
- Function blocks were designed as per the desired operations of the AMU using the PCM600 application configuration.
- A communication network was developed by connecting the AMU, omicron test kit, client PC, and server PC with the Ethernet switch using local area network (LAN) wires.
- Both the IEDs were connected with FO cables to the Ethernet ports.
- For transferring messages through the process bus communication network, all devices were configured to a common local IP address channel that had different verticals.
- Omicron test universe software was installed in the client PC to inject and monitor the substation inputs from the omicron test kit.
- The test kit configurations were completed according to the prototype test requirements.
- The input values to be injected for testing the SMV and the trip time settings for protection studies were performed.
- Substation configuration description (SCD) files for both IEDs were generated and imported in the IED scout software of the server PC.
- The LNs of devices were built in the software, using which we could monitor the SMV of the respective IEDs and protection operations.
- Lastly, monitoring of the GOOSE messages from the sniffer application of the IED scout software was achieved.
3.2. Demonstration of Configuration Challenges and Solutions
3.2.1. Differences in Edition (Ed.) and ICD Files of Devices
3.2.2. Incompatible Device Firmware
3.2.3. Limitations in Ethernet Switch
4. Development of Multivendor Digital Substation
4.1. Single-Bay Digital Substation
4.2. Software Tools Used
5. Demonstration of Multivendor Digital Substation Validation
5.1. Case Study 1: Demonstration of Process Bus Communication Validation
5.1.1. Testing GOOSE Communication
5.1.2. Testing SMV Communication
5.2. Case Study 2: Demonstration of IED Protection Operations Validation
5.2.1. Testing IED Overcurrent Protection
5.2.2. Testing IED Earth Fault Protection
5.2.3. Testing IED Overvoltage Protection
5.3. Testing Client-Server Communication
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
Acronyms | |
AMU | analog merging unit |
CT | current transformer |
DER | distributed energy resource |
Ed | edition |
ETE | end-to-end |
FO | fiber optic |
LD | logical device |
LN | logical node |
OPNET | optimized network engineering tool |
PMS | plug multiplier setting |
PT | potential transformer |
PCM | protection and control IED manager |
SMV | sampled measured value |
SAS | substation automation system |
GOOSE | generic object-oriented substation event |
ICD | IED configuration description |
ILP | integer linear programming |
IED | intelligent electronic device |
IEC | international electrotechnical commission |
IDMT | inverse definite minimum time |
LAN | local area network |
SCN | substation communication network |
SCD | substation configuration description |
SCL | substation configuration language |
SCADA | supervisory control and data acquisition |
TMS | time multiplier setting |
TRM | turns ratio meter |
VUZS | Victoria university zone substation |
VCT | Vizimax commissioning tool |
Notations | |
α | inverse time type constant of IED [-] |
β | relay characteristics constant [-] |
I | fault current value [A] |
Is | pickup current [A] |
rated current [A] | |
phase current [A] | |
line current [A] | |
trip current [A] | |
unbalance current [A] | |
t | trip time [s] |
setting of time for IED tripping [s] | |
T | desired operating time of IED [s] |
Tm | operating time corresponding to TMS 1.0 [s] |
subscriber or receiver timestamp [s] | |
time delay [s] | |
publisher or transmitter timestamp [s] | |
line voltage [V] | |
phase voltage [V] | |
rated voltage [V] | |
fault voltage [V] | |
voltage setting [V] |
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Type of Study | References | Technologies Used | Advantages | Limitations |
---|---|---|---|---|
Simulation-based | [10,11,12,13,14,15,16] | Python coding, OPNET simulation software, VUZS simulator, MATLAB, HYPERSIM modulator. | A simulation-based model can have a larger network with various substation devices and complex network topologies. | 1. The system outputs depend on the quality of simulation work. 2. The output result may not be reliable for a real-time substation implementation, as commercial devices may behave differently in real-time than in a simulation environment. |
Single vendor prototype-based | [17,18,19,20,21,22,23] | Laboratory testbed with single vendor devices. | Easy configuration and interoperability testing. | 1. Complete system installation and the future extension will depend on a single vendor. Thus, the system installation and extension will become costly, time-consuming, and uncertain. 2. The results obtained cannot be used in a multivendor installation. |
Proposed: Multivendor prototype-based | - | Laboratory testbed with multivendor devices. | The system will become cost-effective and reinstallation of devices will take lesser time. | The proposed model has a limited number of devices and a simple network topology. Thus, before a real-time substation installation, a detailed study with a more complex network will be needed. |
Sr. No | Device Name | Model No. | Vendor | Operations Performed |
---|---|---|---|---|
1 | Numerical distance protection IED | REL670 | ABB | Testing of IED SMV and GOOSE (receiver) communications. |
2 | Numerical bay control unit | REC670 | ABB | Testing of IED SMV and GOOSE (publisher) communications. |
3 | Analog Merging Unit | MUG010000 | Vizimax | Converting injected analog inputs into digital form. |
4 | Ethernet switch | AFS670 | ABB | Building substation communication network. |
5 | Computer-controlled test kit | CMC256-6 | Omicron | Injecting substation field values. |
Sr. No | Software Name | Software Version | Vendor | Operations |
---|---|---|---|---|
1 | Protection and Control IED Manager | PCM600 | ABB | For IED configuration and monitoring substation events. |
2 | Vizimax Commissioning Tool | VCT V 2.1.2.22 | Vizimax | For configuration of AMU and changing data attributes as per system requirements. |
3 | Test Universe | Test Universe V 2.11 | Omicron | For settings-based testing of IEDs using a test tool kit. |
4 | Wireshark | Wireshark V 3.2.1 | Wireshark | To capture data packets travelling during substation operations. |
5 | IED Scout | IED Scout Trial V 2.1 | Omicron | To monitor substation events from a remote server. |
Sr. No. | Logic Gate | Gate No. | Breaker Status |
---|---|---|---|
1 | 00 | Gate 1 | Intermediate position |
2 | 01 | Gate 2 | Open position |
3 | 10 | Gate 3 | Close position |
4 | 11 | Gate 4 | Faulty condition |
Sr. No. | GOOSE Publishing Date & Time | Signal Name | GOOSE Receiving Date and Time | Signal Name | ETE Delay |
---|---|---|---|---|---|
1 | 10/4/2021 2:31:21.925 PM | GOOSE_1_SEND | 10/4/2021 2:31:21.926 PM | GOOSE_1_RECV | 1 ms |
2 | 10/4/2021 3:47:09.369 PM | GOOSE_2_SEND | 10/4/2021 3:47:09.371 PM | GOOSE_2_RECV | 2 ms |
3 | 10/4/2021 4:06:11.913 PM | GOOSE_3_SEND | 10/4/2021 4:06:11.915 PM | GOOSE_3_RECV | 2 ms |
4 | 10/4/2021 4:09:45.603 PM | GOOSE_4_SEND | 10/4/2021 4:09:45.605 PM | GOOSE_4_RECV | 2 ms |
Set Mode | Input Values | Phase Angles | Frequency |
---|---|---|---|
VphaseL1 | 57.70 V | 0.00° | 50.00 Hz |
VphaseL2 | 57.70 V | −120.00° | 50.00 Hz |
VphaseL3 | 57.70 V | 120.00° | 50.00 Hz |
IphaseL1 | 1.00 A | 0.00° | 50.00 Hz |
Iphase L2 | 1.00 A | −120.00° | 50.00 Hz |
Iphase L3 | 1.00 A | 120.00° | 50.00 Hz |
Phase | Trip Timings (t) Corresponding to Trip Current Values. | ||||||
---|---|---|---|---|---|---|---|
t (ms) Operated at 2.4 kA | t (ms) Calculated at 2.4 kA | t (ms) Operated at 6 kA | t (ms) Calculated at 6 kA | t (ms) Operated at 12 kA | t (ms) Calculated at 12 kA | ||
R | 1.201 | 1007 | 1029 | 427 | 427 | 295 | 297 |
Y | 1.201 | 1003 | 1029 | 423.1 | 427 | 291.9 | 297 |
B | 1.201 | 1010 | 1029 | 432.1 | 427 | 296.6 | 297 |
Phase | Trip Timings (t) Corresponding to Trip Current Values. | ||||||
---|---|---|---|---|---|---|---|
t (ms) Operated at 1.4 kA | t (ms) Calculated at 1.4 kA | t (ms) Operated at 2 kA | t (ms) Calculated at 2 kA | t (ms) Operated at 3 kA | t (ms) Calculated at 3 kA | ||
R | 0.201 | 998.6 | 1010.2 | 425.4 | 429.3 | 294.6 | 297.06 |
Phase | t setting (s) | t trip (s) | ||
---|---|---|---|---|
R | 152.4 | 5 | 152.4 | 5.0036 |
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Bhattacharjee, T.; Jamil, M.; Alotaibi, M.A.; Malik, H.; Nassar, M.E. Hardware Development and Interoperability Testing of a Multivendor-IEC-61850-Based Digital Substation. Energies 2022, 15, 1785. https://doi.org/10.3390/en15051785
Bhattacharjee T, Jamil M, Alotaibi MA, Malik H, Nassar ME. Hardware Development and Interoperability Testing of a Multivendor-IEC-61850-Based Digital Substation. Energies. 2022; 15(5):1785. https://doi.org/10.3390/en15051785
Chicago/Turabian StyleBhattacharjee, Tanushree, Majid Jamil, Majed A. Alotaibi, Hasmat Malik, and Mohammed E. Nassar. 2022. "Hardware Development and Interoperability Testing of a Multivendor-IEC-61850-Based Digital Substation" Energies 15, no. 5: 1785. https://doi.org/10.3390/en15051785
APA StyleBhattacharjee, T., Jamil, M., Alotaibi, M. A., Malik, H., & Nassar, M. E. (2022). Hardware Development and Interoperability Testing of a Multivendor-IEC-61850-Based Digital Substation. Energies, 15(5), 1785. https://doi.org/10.3390/en15051785