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A Feedforward $10times$ CMOS Current-Ripple Suppressor for Switching Power Supplies

机译:前馈$ 10×$ CMOS电流纹波抑制器,用于开关电源

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With the advent of wireless microsensors and other microscale applications, switching supplies fully integrated on chip or into the package are desirable and often necessary. The problem with small inductors is that they exhibit low inductance and larger equivalent series resistance (ESR); in other words, they induce larger ripples in the output and higher conduction power losses. This brief presents and verifies a current-ripple suppression technique in which a discrete $2 times 2 times 1 hbox{mm}^{3}$ 4.7-$muhbox{H}$ inductor is effectively multiplied by subtracting a replica of the inductor's ac ripple current, allowing only a residual ripple to reach the output. Experimental results from a complementary metal–oxide–semiconductor integrated circuit prototype demonstrate a current- and output-ripple reduction of $10.8times$ and $25.8times$, respectively. The ESR power savings in the smaller inductor favorably offset the quiescent power lost in the multiplier (128 mW), outperforming its higher nonmultiplied 47-$muhbox{H}$ counterpart at high loads (above 250 mA).
机译:随着无线微传感器和其他微型应用的出现,开关电源完全集成在芯片上或封装中是理想的,而且经常是必需的。小型电感器的问题在于它们具有低电感和较大的等效串联电阻(ESR)。换句话说,它们在输出中引起更大的纹波和更高的传导功率损耗。本简介介绍并验证了一种电流纹波抑制技术,其中,通过减去电感的交流纹波副本,有效地将离散的$ 2乘以2乘以1 hbox {mm} ^ {3} $ 4.7- $ muhbox {H} $电感电流,仅允许残余纹波到达输出。互补金属氧化物半导体集成电路原型的实验结果表明,电流纹波和输出纹波降低分别为$ 10.8×$和25.8×$。较小电感器中的ESR功率节省可很好地抵消乘法器中的静态功率损耗(128 mW),优于其在高负载(250 mA以上)下较高的非乘法47-muhbox {H} $对应功率。

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