Renewable Energy Station Simulation Renewable Energy Station Simulation
Renewable Energy Station Simulation

With the national energy green low-carbon transition, domestic industrial policy guidance and new technology progress, the renewable energy industry has entered a booming stage. At present, several 100 MW renewable energy stations have emerged in the three major energy bases of China's northern, northwestern and southwestern regions. With the increasing number and capacity of renewable energy stations, the engineering and academic communities are also interested in the modelling and simulation of 100 MW new energy stations, as well as the impact of renewable energy station access on the power grid.

At present, there is no accepted standard for renewable energy field station modelling research. If detailed model modelling is used, each single unit in the renewale energy field station will be modelled separately, which will greatly increase the complexity of the system simulation model and simulation calculation time, and even face the problem of ‘dimensional disaster’; if equivalent modelling is used, it can be summarized through the classification of models, feeder arrangement and other ways. If isotropic modelling is used, it can be carried out by classifying models, arranging feeders, etc., but this approach cannot reflect the operation characteristics of the whole renewable energy station in detail.

System Schemes

Taking a PV plant as an example, ModelingTech provides a real-time solution for a 100 MW-scale PV plant as shown in the figure.

Hundreds of photovoltaic inverters are modelled with average values, and the closed-loop simulation is formed jointly with the dynamic library encapsulation model of the manufacturer's control algorithm, and the photovoltaic power plant is equivalently partitioned into two system parts at a suitable partitioning point, and the partitioned system is partitioned into six small systems according to the feeder line on each simulator CPU and real-time simulation is carried out by using multiple cores of the CPU to carry out real-time simulation in parallel, in which nine PV power plants are simulated by each CPU simulation core. The average value of the modelled PV inverter system, and then finally the multi-core compilation files of the partitioned system are sent to the CPUs of two MT 8020s to run respectively, and at the same time, the 12 CPU simulation cores in the two MT 8020s are used for joint simulation using the far-width FPGA parallel simulation technology and clock synchronization technology to realize the real-time simulation of 100 inverters for 100 megawatts photovoltaic power plants.

System Schemes
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MT 8020 Simulator
New Power Supercomputing
Platform
MT 8020 Simulator
MT 8020 Simulator
Technical Features
Powerful CPU simulation capability
Powerful CPU simulation capability

Support up to 8 sfp fibre-optic signal modules, can easily achieve physical IO expansion or multi-device parallel simulation, to meet the requirements of HVC large system testing.

Precise clock synchronisation between multiple devices
Precise clock synchronisation between multiple devices

Multi-device parallel simulation is equipped with accurate clock synchronisation technology, which ensures that each simulation device runs synchronously in parallel, and realises real-time simulation of 100 inverters and 100 MW PV power plants.

CPU Parallel Emulation Capability
CPU Parallel Emulation Capability

Super CPU simulation capability, support CPU multi-core parallel simulation, a single core can simulate 9 average value modelling of the PV inverter system

测试内容
  • 01Active power control capability testing
  • 02Simulation verification of LVRT capability
  • 03Power quality testing
Active power control capability testing
Active power control capability testing
Simulation verification of LVRT capability
Simulation verification of LVRT capability
Power quality testing
Power quality testing
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