Wind & Solar Track
Submission 293
Plant Simulator Supports Wind Farm FAT and SAT Based on Tests from IEC 61400
04 GIW26-293
Presented by: shaojun huang
shaojun huangKonstantinos ZarzavatsakisMarkus HolzapfelRui AlvesTorsten Lund
Vestas Wind A/S, Denmark
This paper presents the concept, architecture, and application of a Power Plant Simulator developed to support standardized control and performance testing of wind power plants in accordance with IEC 61400‑21‑2 and FGW Technical Guideline TR3 (Rev.26). The Plant Simulator is designed as a modular, scalable, and high‑fidelity test bench that emulates the electrical behavior of an entire wind power plant, including wind turbine generators (WTGs), the collector grid, additional plant components (e.g. STATCOMs, MSUs, breakers), power meters, and the external grid, while interfacing directly with the real Power Plant Controller (PPC) and SCADA system under test.

The Plant Simulator directly supports the execution of IEC 61400‑21‑2 performance tests (e.g. Clause 8.2.2 active power control, Clause 8.2.5 reactive power control) and functionality tests (Clause 8.3, including ramp‑rate limitation, frequency control, voltage control Q(U), power factor control, and communication fallback scenarios). These tests are carried out in a controlled and repeatable HiL environment, as explicitly foreseen by IEC 61400‑21‑2 for PPC validation. In parallel, the simulator enables FGW TR3 controller‑level tests, such as determination of switchover behaviour (Section 6.1.5) and reconnection after grid protection events (Section 6.1.12), by emulating grid disturbances, protection triggers, and recovery conditions.

Moreover, Plant Simulator facilitates the systematic comparison and verification of PPC behavior against OEM electrical models. HiL test results can be benchmarked with offline electromagnetic transient models (e.g. Vestas PSCAD models) and with real‑time software‑in‑the‑loop solutions (e.g. RSCAD on RTDS). Importantly, these OEM reference models are derived from source code aligned with real products (PPC and WTG), enabling a consistent and traceable validation chain from component‑level models to plant‑level controller performance. The presented Plant Simulator therefore provides a robust foundation for standard‑compliant testing, early integration verification, and model validation of modern wind power plants.