首页|期刊导航|电工技术学报|面向算力供电的倍流整流变换器高密度矩阵磁集成方法

面向算力供电的倍流整流变换器高密度矩阵磁集成方法OA

High-Density Matrix Magnetic Integration Method for Current-Doubler Rectifier Converters in Computing Power Supply

中文摘要英文摘要

该文研究基于矩阵变压器的倍流整流(CDR)变换器的磁集成方法.通过将传统 CDR集成磁心的非绕线柱拆分,充分利用绕组上无电流分布的空间,减小了单个 CDR 电感/变压器集成单元的面积与绕组长度.在此基础上进一步进行矩阵化扩展,提出兼顾扩展性与布线简洁的优化磁心和绕组结构,减小磁性元件损耗和绕组损耗.根据矩阵磁集成结构中 CDR 负耦合变压器磁通分布特性,以集成磁件最小占板面积为目标给出磁结构参数的设计方法.最后通过有限元仿真进行验证和对比分析,并搭建了一台 48 V 输入,0.8~1.2 V、150 A 输出的实验样机,实测峰值效率为 91.88%,功率密度达 800 W/in3(1 in3=1.638 71×10-5 m3),验证了所提方法的有效性.

The explosive growth of data and computing demand has significantly increased data center energy consumption.As the 48 V bus architecture gradually replaces the conventional 12 V distribution system,power supplies must deliver ultra-low output voltages and high currents while maintaining high efficiency and high power density.Conventional two-stage architectures,which consist of a bus converter followed by a point-of-load regulator,suffer from two-stage efficiency losses and limited power density.Consequently,single-stage solutions have gained increasing attention.Among these,the current-doubler rectifier(CDR)topology has been widely studied due to its simple structure and suitability for low-voltage,high-current applications.However,challenges remain in scalability,magnetic integration,and optimization of conduction loss.Therefore,this paper proposes a high-density matrix-magnetic-integration method for CDR converters. The proposed method splits the non-winding leg of a conventional CDR integrated magnetic core.This design exploits underutilized regions of the winding window where current distribution is minimal,thereby reducing both the footprint and the winding length of each integrated inductor-transformer unit.Accordingly,a matrix expansion scheme is introduced to enable the modular combination of multiple sub-transformer units.The optimized configuration of cores and windings achieves a balance between scalability and simplified routing while reducing magnetic and conduction losses.To guide the design,the flux distribution characteristics of negatively coupled transformers in the matrix magnetic integration structure are analyzed,and a design approach for magnetic parameters is developed with the minimum footprint of the integrated magnetic component as the primary objective.The proposed method is validated through finite-element simulations and a prototype featuring a 10-layer printed circuit board(PCB)winding structure. The prototype was tested with a 48 V input and a 0.8 V to 1.2 V,150 A output.Experimental results indicate a peak efficiency of 91.88%and a power density of 800 W/in3.Compared with a conventional EI-core design,the proposed structure reduces the footprint by approximately 11%and core loss by approximately 10%.Thermal imaging at full load(150 A)indicates a maximum hot-spot temperature of 73.5℃. In conclusion,the matrix-transformer-based CDR converter enables direct conversion from a 48 V bus to low-voltage,high-current outputs while maintaining high efficiency and power density.The proposed matrix magnetic integration method effectively reduces the size of each unit core and minimizes losses,demonstrating strong potential for application in high-performance computing power supply systems.In addition,the matrix structure provides a pathway for further current scalability.This paper offers a practical and reliable solution to future low-voltage,high-current power-delivery requirements.

许一鸣;吴红飞;李泽伟;秦苏新;邢岩

南京航空航天大学自动化学院 南京 211106南京航空航天大学自动化学院 南京 211106南京航空航天大学自动化学院 南京 211106南京航空航天大学自动化学院 南京 211106南京航空航天大学自动化学院 南京 211106

信息技术与安全科学

倍流整流磁集成矩阵变压器耦合电感优化设计

Current doubler rectifiermagnetic integrationmatrix transformercoupled inductoroptimization design

《电工技术学报》 2026 (14)

4788-4798,11

国家自然科学基金(52477192)和江苏省基础研究计划(BK20253056)资助项目.

10.19595/j.cnki.1000-6753.tces.251322

评论