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首页> 外文期刊>IEEE Transactions on Power Electronics >CCM/GM Relative Skip Energy Control and Bidirectional Dynamic Slope Compensation in a Single-Inductor Multiple-Output DC–DC Converter for Wearable Device Power Solution
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CCM/GM Relative Skip Energy Control and Bidirectional Dynamic Slope Compensation in a Single-Inductor Multiple-Output DC–DC Converter for Wearable Device Power Solution

机译:用于穿戴式设备电源解决方案的单电感器多输出DC-DC转换器中的CCM / GM相对跳跃能量控制和双向动态斜率补偿

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摘要

Compact size wearable devices require multiple supplies with relative large loading difference, which causes serious cross regulation, large ripple, and oscillation in single-inductor multiple-output (SIMO) DC–DC converter. Thus, a continuous conduction mode/green mode (CCM/GM) relative skip energy control (RSEC) in SIMO is proposed for wearable device power solution. Different from the conventional absolute skip method, the RSEC eliminates unnecessary skip-induced voltage ripple and cross regulation with well regulation performance over wide load and voltage ranges. Optimization between efficiency and voltage ripple achieves low noise supply and reduced switching loss. In addition, smooth transition between CCM and GM provides high power and longer usage time in wearable devices. Furthermore, bidirectional dynamic slope compensation conquers subharmonic oscillation and avoids invalid pulses in the energy delivery operation of current-mode SIMO DC–DC converters. The test chip fabricated in the 0.18 μm CMOS process occupies active area. Maximum output ripple, overshoot/undershoot, and cross regulation are kept below 40 mV, 27 mV, and 0.0432 mV/mA, respectively.
机译:紧凑型可穿戴设备需要具有相对较大负载差的多个电源,这会导致严重的交叉调节,大纹波和单电感多输出(SIMO)DC-DC转换器的振荡。因此,针对可穿戴设备电源解决方案,提出了SIMO中的连续传导模式/绿色模式(CCM / GM)相对跳跃能量控制(RSEC)。与传统的绝对跳跃方法不同,RSEC消除了不必要的跳跃感应电压纹波和交叉调节,并在宽负载和电压范围内具有良好的调节性能。效率和电压纹波之间的优化实现了低噪声电源并降低了开关损耗。此外,CCM和GM之间的平滑过渡可为可穿戴设备提供高功率和更长的使用时间。此外,双向动态斜率补偿可克服次谐波振荡,并避免电流模式SIMO DC-DC转换器的能量输送操作中出现无效脉冲。以0.18μmCMOS工艺制造的测试芯片占据了有效面积。最大输出纹波,过冲/下冲和交叉调节分别保持在40mV,27mV和0.0432mV / mA以下。

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