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Photovoltaic-battery hybrid power supply applied with advanced-time-sharing switching technique and discrete ripple correlation control

机译:采用先进的分时切换技术和离散纹波相关控制的光伏电池混合电源

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摘要

Maximum power point tracking (MPPT) is usually desirable in photovoltaic (PV) power applications. The scenario of load demand in excess of power capability that a PV device can provide requires a hybrid power supply (HPS) to employ additional power sources (e.g. AC-line supply or battery power system) for maintaining output voltage regulation (OVR) and MPPT. Such a HPS, in this study, is topologized with a double-input buck conversion circuit which is proven to possess higher efficiency, less component count, lower cost and simpler manipulation, comparing with those conventional parallel-connected single-input single-output converters. Advanced-timesharing switching (ATSS) scheme for PWM switching function generation is developed and utilized to implement smooth and accurate adjustment to output power produced by power sources, without losing OVR, MPPT, and single-input equivalent circuit analysis convenience. Discrete ripple correlation control is selected to realize MPPT. This paper brings forward the theoretical and mathematical interpretation to the aforementioned procedures as well as the simulation-level verification and performance testing.
机译:在光伏(PV)功率应用中,通常需要最大功率点跟踪(MPPT)。光伏设备可提供超出功率能力的负载需求情况,需要混合电源(HPS)来使用其他电源(例如,交流电源或电池电源系统)来维持输出电压调节(OVR)和MPPT 。与传统的并联单输入单输出转换器相比,这种HPS在本研究中采用了双输入降压转换电路,该电路被证明具有更高的效率,更少的组件数,更低的成本以及更简单的操作。 。开发了用于PWM开关功能生成的高级分时开关(ATSS)方案,并用于对电源产生的输出功率进行平稳而准确的调整,而又不会失去OVR,MPPT和单输入等效电路分析的便利性。选择离散纹波相关控制以实现MPPT。本文对上述过程进行了理论和数学解释,并进行了仿真级验证和性能测试。

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