DOI QR코드

DOI QR Code

Buck converter with switched capacitor charge compensation for fast transient response

  • Wanxin Zhou (State Key Laboratory of Particle Detection and Electronics, University of Science and Technology of China) ;
  • Kezhu Song (State Key Laboratory of Particle Detection and Electronics, University of Science and Technology of China) ;
  • Chuan Wu (State Key Laboratory of Particle Detection and Electronics, University of Science and Technology of China) ;
  • Chengyang Zhu (State Key Laboratory of Particle Detection and Electronics, University of Science and Technology of China) ;
  • Dongyi Xie (State Key Laboratory of Particle Detection and Electronics, University of Science and Technology of China)
  • 투고 : 2023.10.25
  • 심사 : 2024.04.25
  • 발행 : 2024.08.20

초록

As microprocessor currents exceed 500 A and slew rate reaches 1000 A/㎲, increasing the decoupling capacitance on the motherboard to ensure normal operation of the microprocessor is inevitable because of the limited response capability of the voltage regulator. However, the area of the motherboard used for capacitors is usually narrow. To reduce the required capacitance, a novel buck converter with an auxiliary circuit for charge compensation using switched capacitors is proposed. The auxiliary circuit is not activated during the steady state. When the load current changes rapidly, the switched capacitors can quickly absorb or release charge to suppress voltage fluctuations. A 12 V-0.9 V buck converter has been built and tested under a 480 A load current step and a 960 A/㎲ current slew rate. The proposed scheme with 9.964 mF capacitance has an overshoot of 115 mV and an undershoot of 89 mV. Compared with the conventional PID scheme, the proposed scheme can save 58.4% of the capacitance for the same voltage fluctuations or suppress 39.5% of overshoot and 37.3% of undershoot with the same capacitance.

키워드

과제정보

This work was supported by the Shenzhen Science and Technology Program under Grant KQTD20170810111725321.

참고문헌

  1. Intel: W-3175X Processor Thermal Design Power (TPD) and Power Rail DC Specifications. https://www.intel.com/content/www/us/en/products/docs/processors/xeon/xeon-w-3175x-datasheet-addendum.html.
  2. Anuchin, A., Shpak, D., Ahmed, M.R., Stolyarov, E., Surnin, D., Acedo, J.P.: Nested Loop Control of a Buck Converter under Variable Input Voltage and Load Conditions. In: 2020 55th International Universities Power Engineering Conference (UPEC), pp. 1-5 (2020)
  3. Esteki, M., Poorali, B., Adib, E., Farzanehfard, H.: Interleaved buck converter with continuous input current, extremely low output current ripple, low switching losses, and improved step-down conversion ratio. IEEE Trans. Industr. Electron. 62(8), 4769-4776 (2015) https://doi.org/10.1109/TIE.2015.2397881
  4. Wang, Y., Cheng, P., Ma, X., Tao, L., Zhao, D.: Design of miniaturized and lightweight coupling inductors for interleaved parallel DC/DC converters. J. Power Electron. 21, 1439-1450 (2021) https://doi.org/10.1007/s43236-021-00291-z
  5. Zhu, F., Li, Q.: Coupled inductors with an adaptive coupling coefficient for multiphase voltage regulators. IEEE Trans. Power Electron. 38(1), 739-749 (2023)
  6. Huang, W., Lehman, B.: Inversely coupled inductors with small volume and reduced power loss for switching converters. IEEE Trans. Power Electron. 38(6), 6779-6783 (2023) https://doi.org/10.1109/TPEL.2023.3241883
  7. Lu, W., Ruan, Y., Zhao, Z., Iu, H.H.C.: Auxiliary parallel inductor switching control for improving the load transient response performance of buck converters. IEEE Trans. Circuits Syst. II Express Briefs 66(1), 96-100 (2019)
  8. Amanor-Boadu, J., Rice, R., Shuma, A., Bazaz, R., Tamdem, H.: Pre and post silicon server platform transient performance using trans-inductor voltage regulator. In: 2023 IEEE 41st VLSI Test Symposium (VTS), pp. 1-5 (2023)
  9. Kim, D., Baek, J., Lee, J., Shin, J., Shin, J.-W.: Implementation of soft-switching auxiliary current control for faster load transient response. IEEE Access. 9, 7092-7106 (2021) https://doi.org/10.1109/ACCESS.2021.3049139
  10. Kim, D., Shin, J.W.: Dynamic response of buck converter with auxiliary current control: analysis and design of practical implementation. IEEE Trans. Power Electron. 36(12), 13917-13929 (2021) https://doi.org/10.1109/TPEL.2021.3087607
  11. Khan, N., Xu, J., Pique, G.V., Pigott, J., Bergveld, H.J., Sherif, A.E., Trescases, O.: A Wide-Input-Voltage-Range 50W Series-Capacitor Buck Converter with Ancillary Voltage Bus for Fast Transient Response in 48V PoL Applications. In: 2022 24th European Conference on Power Electronics and Applications (EPE'22 ECCE Europe), pp. 1-8 (2022)
  12. Shirmohammadli, V., Saberkari, A., Martinez-Garcia, H., Alarcon-Cot, E.: An efficient CMOS LDO-assisted DC/DC buck regulator. In: 2016 Conference on Design of Circuits and Integrated Systems (DCIS), pp. 1-4 (2016)
  13. Zhi, H., Zeng, Y., Zhou, W., Tan, H.Z.: Fast-transient, light-load efficient DC-DC converter using an auxiliary D-LDO. In: 2020 IFIP/IEEE 28th International Conference on Very Large Scale Integration (VLSI-SOC), pp. 181-185(2020)
  14. Kirshenboim, O., Cervera, A., Peretz, M.M.: Improving loading and unloading transient response of a voltage regulator module using a load-side auxiliary gyrator circuit. IEEE Trans. Power Electron. 32(3), 1996-2007 (2017)
  15. Shan, Z., Tan, S.C., Tse, C.K., Jatskevich, J.: Augmented buck converter design using resonant circuits for fast transient recovery. IEEE Trans. Power Electron. 31(8), 5666-5679 (2016) https://doi.org/10.1109/TPEL.2015.2496206