This paper develops an improved distributed finite-time control algorithm for multiagent-based ac microgrids with battery energy storage systems (BESSs) utilizing a low-width communication network. The proposed control algorithm can simultaneously coordinate BESSs to eliminate any deviation from the nominal frequency as well as solving the state of charge (SoC) balancing problem. The stability of the proposed control algorithm is established using the Lyapunov method and homogeneous approximation theory, which guarantees an accelerated convergence within a settling time that does not dependent on initial conditions. Based on this, to significantly reduce the communication burdens, an event-triggered communication mechanism is designed which can also avoid Zeno behavior. Then sufficient conditions on the event-triggered boundary are derived to guarantee the stability and reliability of the whole system. Practical local constraints are imposed to implement the control protocol, and the theoretical results are applied to a test system consisting of five DGs and five BESSs, which verifies the effectiveness of the proposed strategy.
翻译:本文为使用低宽通信网络的电池能源储存系统(BESS)的多试剂微型电磁网开发了经改进的分布式有限时间控制算法,拟议的控制算法可以同时协调BESS,以消除任何偏离名义频率的情况,并解决电荷平衡状态问题。拟议的控制算法的稳定性是使用Lyapunov方法和同质近似理论确定的,这种理论保证在不取决于初始条件的结算时间内加速趋同。在此基础上,为了大大减轻通信负担,设计了一个事件触发通信机制,也可以避免Zeno行为。然后,为事件触发边界创造足够的条件,以保证整个系统的稳定性和可靠性。对执行控制协议施加了实际的当地限制,理论结果适用于由5个DG和5个BESS组成的测试系统,该测试系统验证了拟议战略的有效性。