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Auto-tuning charge balance control for improving transient response on buck converter

机译:用于改善降压转换器瞬态响应的自动调整充电平衡控制

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Load transient and dynamic voltage scaling (DVS) are commonly seen in the operation of the system processor. These two functions usually encounter large output voltage transient, which is hard to be quickly settled. Charge balance control is one of the prior choices that enables the converter to operate at its optimal charge/discharge slew rate so as to achieve fast transient response. The effectiveness of the optimal performance generally requires precise knowledge of the circuit parameters for charge balance computation. However, parameter drifting due to the manufacturing process may affect the performance, which is hard to implement a power integrated circuit (IC) for wide range applications. Different from the original approaches, this paper proposes an auto-tuning charge balance control (AT-CBC) to optimize load transient response and DVS of the buck converter. The auto-tuning mechanism can save the preknowledge of the output filter and avoid complex calculation in digital control. The function of AT-CBC is validated by a field-programmable gate array (FPGA) controlled buck converter. Experimental result shows that the output voltage can be settled within 3 mu s for the 750-mA load step transient. For the 0.3-V DVS transient, the output voltage can be settled within 4 mu s.
机译:在系统处理器的操作中通常可以看到负载瞬态和动态电压缩放(DVS)。这两个功能通常遇到大输出电压瞬态,这很难快速稳定。充电平衡控制是使转换器能够在其最佳充电/放电转换速率下操作以实现快速瞬态响应的选择之一。最佳性能的有效性通常需要精确地了解电路参数以进行充电平衡计算。然而,由于制造过程引起的参数漂移可能会影响性能,这很难实现用于宽范围应用的功率集成电路(IC)。本文不同于原始方法,提出了一种自动调整充电平衡控制(AT-CBC),以优化COUNT转换器的负载瞬态响应和DVS。自动调整机制可以节省输出滤波器的预先知道并避免在数字控制中复杂计算。 AT-CBC的功能由现场可编程门阵列(FPGA)控制的降压转换器验证。实验结果表明,输出电压可以在750 mA负载步进瞬态范围内稳定。对于0.3V DVS瞬态,输出电压可以在4亩内稳定。

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